Unit 10 Haloalkanes And Haloarenes
Halogenated compounds persist in the environment due to their resistance to breakdown by soil bacteria.
The replacement of hydrogen atom(s) in an aliphatic or aromatic hydrocarbon by halogen atom(s) results in the formation of alkyl halide (haloalkane) and aryl halide (haloarene), respectively. Haloalkanes contain halogen atom(s) attached to the sp3 hybridised carbon atom of an alkyl group whereas haloarenes contain halogen atom(s) attached to sp2 hybridised carbon atom(s) of an aryl group. Many halogen containing organic compounds occur in nature and some of these are clinically useful. These classes of compounds find wide applications in industry as well as in dayto- day life. They are used as solvents for relatively non-polar compounds and as starting materials for the synthesis of wide range of organic compounds. Chlorine containing antibiotic, chloramphenicol, produced by microorganisms is very effective for the treatment of typhoid fever. Our body produces iodine containing hormone, thyroxine, the deficiency of which causes a disease called goiter. Synthetic halogen compounds, viz. chloroquine is used for the treatment of malaria; halothane is used as an anaesthetic during surgery. Certain fully fluorinated compounds are being considered as potential blood substitutes in surgery.
In this Unit, you will study the important methods of preparation, physical and chemical properties and uses of organohalogen compounds.
10.1 Classification
Haloalkanes and haloarenes may be classified as follows:
10.1.1 On the Basis of Number of Halogen Atoms
These may be classified as mono, di, or polyhalogen (tri-,tetra-, etc.) compounds depending on whether they contain one, two or more halogen atoms in their structures. For example,
Monohalocompounds may further be classified according to the hybridisation of the carbon atom to which the halogen is bonded, as discussed below.
10.1.2 Compounds Containing $\mathbf{s p}^{\mathbf{3}} \mathbf{~C}-\mathbf{X}$ Bond (X= F, Cl, Br, I)
This class includes
(a) Alkyl halides or haloalkanes ( $\mathbf{R}-\mathbf{X}$ )
In alkyl halides, the halogen atom is bonded to an alkyl group $(\mathrm{R})$. They form a homologous series represented by $\mathrm{C} _{\mathrm{n}} \mathrm{H} _{2 \mathrm{n}+1} \mathrm{X}$. They are further classified as primary, secondary or tertiary according to the nature of carbon to which halogen is attached. If halogen is attached to a primary carbon atom in an alkyl halide, the alkyl halide is called primary alkyl halide or ($1^{\circ}$) alkyl halide. Similarly, if halogen is attached to secondary or tertiary carbon atom, the alkyl halide is called secondary alkyl halide ($2^{\circ}$) and tertiary ($3^{\circ}$) alkyl halide, respectively.
(b) Allylic halides
These are the compounds in which the halogen atom is bonded to an $s p^{3}$-hybridised carbon atom adjacent to carbon-carbon double bond $(\mathrm{C}=\mathrm{C})$ i.e. to an allylic carbon.
(c) Benzylic halides
These are the compounds in which the halogen atom is bonded to an $s p^{3}$-hybridised carbon atom attached to an aromatic ring.
10.1.3 Compounds Containing $\boldsymbol{s p}^{2} \mathrm{C}-\mathrm{X}$ Bond
This class includes:
(a) Vinylic halides
These are the compounds in which the halogen atom is bonded to a $s p^{2}$-hybridised carbon atom of a carbon-carbon double bond $(\mathrm{C}=\mathrm{C})$.
(b) Aryl halides
These are the compounds in which the halogen atom is directly bonded to the $s p^{2}$-hybridised carbon atom of an aromatic ring.
10.2 Nomenclature
Having learnt the classification of halogenated compounds, let us now learn how these are named. The common names of alkyl halides are derived by naming the alkyl group followed by the name of halide. In the IUPAC system of nomenclature, alkyl halides are named as halosubstituted hydrocarbons. For mono halogen substituted derivatives of benzene, common and IUPAC names are the same. For dihalogen derivatives, the prefixes $o^{-,}, m_{-}, p$ - are used in common system but in IUPAC system, as you have learnt in Class XI, the numerals 1,$2 ; 1,3$ and 1,4 are used.
The dihaloalkanes having the same type of halogen atoms are named as alkylidene or alkylene dihalides. The dihalo-compounds having both the halogen atoms are further classified as geminal halides or gem-dihalides when both the halogen atoms are present on the same carbon atom of the chain and vicinal halides or vic-dihalides when halogen atoms are present on adjacent carbon atoms. In common name system, gem-dihalides are named as alkylidene halides and vic-dihalides are named as alkylene dihalides. In IUPAC system, they are named as dihaloalkanes.
Some common examples of halocompounds are mentioned in Table 10.1.
Example 10.1
Draw the structures of all the eight structural isomers that have the molecular formula $\mathrm{C_5} \mathrm{H_11} \mathrm{Br}$. Name each isomer according to IUPAC system and classify them as primary, secondary or tertiary bromide.
Solution
$\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{Br}$ | 1-Bromopentane (1 $\left.{ }^{\circ}\right)$ |
---|---|
$\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}(\mathrm{Br}) \mathrm{CH}_3$ | 2-Bromopentane $\left(2^{\circ}\right)$ |
$\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}(\mathrm{Br}) \mathrm{CH}_2 \mathrm{CH}_3$ | 3-Bromopentane (2 $\left.{ }^{\circ}\right)$ |
$\left(\mathrm{CH}_3\right)_2 \mathrm{CHCH}_2 \mathrm{CH}_2 \mathrm{Br}$ | 1-Bromo-3-methylbutane (1 $\left.{ }^{\circ}\right)$ |
$\left(\mathrm{CH}_3\right)_2 \mathrm{CHCHBrCH}_3$ | 2-Bromo-3-methylbutane(2 $\left.{ }^{\circ}\right)$ |
$\left(\mathrm{CH}_3\right)_2 \mathrm{CBrCH}_2 \mathrm{CH}_3$ | 2-Bromo-2-methylbutane $\left(3^{\circ}\right)$ |
$\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}\left(\mathrm{CH}_3\right) \mathrm{CH}_2 \mathrm{Br}$ | 1-Bromo-2-methylbutane(1 $\left.{ }^{\circ}\right)$ |
$\left(\mathrm{CH}_3\right)_3 \mathrm{CCH}_2 \mathrm{Br}$ | 1-Bromo-2,2-dimethylpropane (1 $\left.{ }^{\circ}\right)$ |
Example 10.2 Write IUPAC names of the following:
Solution
(i) 4-Bromopent-2-ene
(ii) 3-Bromo-2-methylbut-1-ene
(iii) 4-Bromo-3-methylpent-2-ene
(iv) 1-Bromo-2-methylbut-2-ene
(v) 1-Bromobut-2-ene
(vi) 3-Bromo-2-methylpropene
Intext Question
10.1 Write structures of the following compounds:
(i) 2-Chloro-3-methylpentane
(ii) 1-Chloro-4-ethylcyclohexane
(iii) 4-tert. Butyl-3-iodoheptane
(iv) 1,4-Dibromobut-2-ene
(v) 1-Bromo-4-sec. butyl-2-methylbenzene.
Show Answer
Answer
(i)
2-Chloro-3-methyl pentane
(ii)
1-Chloro-4-ethylcyclohexane
(iii)
4- tert-Butyl-3-iodoheptane
(iv)
$ \mathrm{Br}-\stackrel{1}{\mathrm{C}} \mathrm{H_2}-{ }^{2} \mathrm{C} \mathrm{H}=\stackrel{3}{\mathrm{C}} \mathrm{H}-\stackrel{4}{\mathrm{C}} \mathrm{H_2}-\mathrm{Br} $
1, 4-Dibromobut-2-ene
1-Bromo-4-sec-butyl-2-methylbenzene
10.3 Nature of C-X Bond
Halogen atoms are more electronegative than carbon, therefore, carbon-halogen bond of alkyl halide is polarised; the carbon atom bears a partial positive charge whereas the halogen atom bears a partial negative charge.
As we go down the group in the periodic table, the size of halogen atom increases. Fluorine atom is the smallest and iodine atom is the largest. Consequently the carbon-halogen bond length also increases from $\mathrm{C}-\mathrm{F}$ to $\mathrm{C}-\mathrm{I}$. Some typical bond lengths, bond enthalpies and dipole moments are given in Table 10.2.
Alkyl halides are best prepared from alcohols, which are easily accessible.
Table 10.2: Carbon-Halogen (C—X) Bond Lengths, Bond Enthalpies and Dipole Moments
Bond | Bond length/pm | C-X Bond enthalpies/ kJmol ${ }^{-1}$ | Dipole moment/Debye |
---|---|---|---|
$\mathrm{CH}_3-\mathrm{F}$ | 139 | 452 | 1.847 |
$\mathrm{CH}_3-\mathrm{Cl}$ | 178 | 351 | 1.860 |
$\mathrm{CH}_3-\mathrm{Br}$ | 193 | 293 | 1.830 |
$\mathrm{CH}_3-\mathrm{I}$ | 214 | 234 | 1.636 |
10.4 Methods of Preparation of Haloalkanes
10.4.1 From Alcohols
The hydroxyl group of an alcohol is replaced by halogen on reaction with concentrated halogen acids, phosphorus halides or thionyl chloride. Thionyl chloride is preferred because in this reaction alkyl halide is formed along with gases $\mathrm{SO_2}$ and $\mathrm{HCl}$. The two gaseous products are escapable, hence, the reaction gives pure alkyl halides. The reactions of primary and secondary alcohols with $\mathrm{HCl}$ require the presence of a catalyst, $\mathrm{ZnCl_2}$. With tertiary alcohols, the reaction is conducted by simply shaking the alcohol with concentrated $\mathrm{HCl}$ at room temperature. Constant boiling with $\mathrm{HBr}(48 %)$ is used for preparing alkyl bromide. Good yields of R-I may be obtained by heating alcohols with sodium or potassium iodide in 95% orthophosphoric acid. The order of reactivity of alcohols with a given haloacid is $3^{\circ}>2^{\circ}>1^{\circ}$. Phosphorus tribromide and triiodide are usually generated in situ (produced in the reaction mixture) by the reaction of red phosphorus with bromine and iodine respectively.
$$ \begin{aligned} & \mathrm{R}-\mathrm{OH}+\mathrm{HCl} \xrightarrow{\mathrm{ZnCl_2}} \mathrm{R}-\mathrm{Cl}+\mathrm{H_2} \mathrm{O} \\ & \mathrm{R}-\mathrm{OH}+\mathrm{NaBr}+\mathrm{H_2} \mathrm{SO_4} \longrightarrow \mathrm{R}-\mathrm{Br}+\mathrm{NaHSO_4}+\mathrm{H_2} \mathrm{O} \\ & 3 \mathrm{R}-\mathrm{OH}+\mathrm{PX_3} \longrightarrow 3 \mathrm{R}-\mathrm{X}+\mathrm{H_3} \mathrm{PO_3} \quad(\mathrm{X}=\mathrm{Cl}, \mathrm{Br}) \\ & \mathrm{R}-\mathrm{OH}+\mathrm{PCl_5} \longrightarrow \mathrm{R}-\mathrm{Cl}+\mathrm{POCl_3}+\mathrm{HCl} \\ & \mathrm{R}-\mathrm{OH}+\frac{\mathrm{red} \mathrm{P} / \mathrm{X_2}}{\mathrm{X_2}=\mathrm{Br_2}, \mathrm{I_2}} \mathrm{R}-\mathrm{X} \\ & \mathrm{R}-\mathrm{OH}+\mathrm{SOCl_2} \longrightarrow \mathrm{R}-\mathrm{Cl}+\mathrm{SO_2}+\mathrm{HCl} \end{aligned} $$
The preparation of alkyl chloride is carried out either by passing dry hydrogen chloride gas through a solution of alcohol or by heating a mixture of alcohol and concentrated aqueous halogen acid.
The above methods are not applicable for the preparation of aryl halides because the carbon-oxygen bond in phenols has a partial double bond character and is difficult to break being stronger than a single bond.
10.4.2 From Hydrocarbons
(I) From alkanes by free radical halogenation
Free radical chlorination or bromination of alkanes gives a complex mixture of isomeric mono- and polyhaloalkanes, which is difficult to separate as pure compounds. Consequently, the yield of any single compound is low.
$\mathrm{CH_3}\mathrm{CH_2}\mathrm{CH_2}\mathrm{CH_3} \xrightarrow[ \text {or heat}]{\mathrm{Cl_2} \text {/UV} \quad \text {light}} \mathrm{CH_3}\mathrm{CH_2}\mathrm{CH_2}\mathrm{CH_2}\mathrm{Cl_2} + \mathrm{CH_3}\mathrm{CH_2}\mathrm{CHCl}\mathrm{CH_3} $
(II) From alkenes
(i) Addition of hydrogen halides: An alkene is converted to corresponding alkyl halide by reaction with hydrogen chloride, hydrogen bromide or hydrogen iodide.
Propene yields two products, however only one predominates as per Markovnikov’s rule. (Unit 13, Class XI)
$$ \mathrm{CH_3} \mathrm{CH}=\mathrm{CH_2}+\mathrm{H}-\mathrm{I} \longrightarrow \underset {\text{minor}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{I}} + \underset{ \text{major }}{\mathrm{CH_3} \mathrm{CHICH_3}} $$
(ii) Addition of halogens: In the laboratory, addition of bromine in $\mathrm{CCl}_{4}$ to an alkene resulting in discharge of reddish brown colour of bromine constitutes an important method for the detection of double bond in a molecule. The addition results in the synthesis of vic-dibromides, which are colourless (Unit 9, Class XI).
Example 10.3
Identify all the possible monochloro structural isomers expected to be formed on free radical monochlorination of $\left(\mathrm{CH_3}\right)_{2} \mathrm{CHCH_2} \mathrm{CH_3}$.
Solution
In the given molecule, there are four different types of hydrogen atoms. Replacement of these hydrogen atoms will give the following
$\left(\mathrm{CH_3}\right)_{2} \mathrm{CHCH_2} \mathrm{CH_2} \mathrm{Cl}$ | $\left(\mathrm{CH_3}\right)_{2} \mathrm{CHCH}(\mathrm{Cl}) \mathrm{CH_3}$ |
---|---|
$\left(\mathrm{CH_3}\right)_{2} \mathrm{C}(\mathrm{Cl}) \mathrm{CH_2} \mathrm{CH_3}$ | $\mathrm{CH_3} \mathrm{CH}\left(\mathrm{CH_2} \mathrm{Cl_2} \mathrm{CH_2} \mathrm{CH_3}\right).$ |
10.4.3 Halogen Exchange
Alkyl iodides are often prepared by the reaction of alkyl chlorides/ bromides with NaI in dry acetone. This reaction is known as Finkelstein reaction.
$$ \begin{aligned} & \mathrm{R}-\mathrm{X}+\mathrm{NaI} \longrightarrow \mathrm{R}-\mathrm{I}+\mathrm{NaX} \\ & \mathrm{X}=\mathrm{Cl}, \mathrm{Br} \end{aligned} $$
NaCl or NaBr thus formed is precipitated in dry acetone. It facilitates the forward reaction according to Le Chatelier’s Principle. The synthesis of alkyl fluorides is best accomplished by heating an alkyl chloride/bromide in the presence of a metallic fluoride such as $\mathrm{AgF}, \mathrm{Hg}_2 \mathrm{~F}_2, \mathrm{CoF}_2$ or $\mathrm{SbF}_3$. The reaction is termed as $\mathrm{Swarts}$ reaction.
$$ \mathrm{H}_3 \mathrm{C}-\mathrm{Br}+\mathrm{AgF} \longrightarrow \mathrm{H}_3 \mathrm{C}-\mathrm{F}+\mathrm{AgBr} $$
Example 6.3 Identify all the possible monochloro structural isomers expected to be formed on free radical monochlorination of $\left(\mathrm{CH}_3\right)_2 \mathrm{CHCH}_2 \mathrm{CH}_3$.
Solution
In the given molecule, there are four different types of hydrogen atoms. Replacement of these hydrogen atoms will give the following
$\left(\mathrm{CH} _{3}\right) _{2} \mathrm{CHCH} _{2} \mathrm{CH} _{2} \mathrm{Cl}$,
$\left(\mathrm{CH} _{3}\right) _{2} \mathrm{CHCH}(\mathrm{Cl}) \mathrm{CH} _{3}$,
$\left(\mathrm{CH} _{3}\right) _{2} \mathrm{C}(\mathrm{Cl}) \mathrm{CH} _{2} \mathrm{CH} _{3}$,
$\mathrm{CH} _{3} \mathrm{CH}\left(\mathrm{CH} _{2} \mathrm{Cl}\right) \mathrm{CH} _{2} \mathrm{CH} _{3}$
10.5 Preparation of Haloarenes
(i) From hydrocarbons by electrophilic substitution Aryl chlorides and bromides can be easily prepared by electrophilic substitution of arenes with chlorine and bromine respectively in the presence of Lewis acid catalysts like iron or iron(III) chloride.
The ortho and para isomers can be easily separated due to large difference in their melting points. Reactions with iodine are reversible in nature and require the presence of an oxidising agent $\left(\mathrm{HNO_3}\right).$, $\mathrm{HIO_4}$ ) to oxidise the $\mathrm{HI}$ formed during iodination. Fluoro compounds are not prepared by this method due to high reactivity of fluorine.
(ii) From amines by Sandmeyer’s reaction
When a primary aromatic amine, dissolved or suspended in cold aqueous mineral acid, is treated with sodium nitrite, a diazonium salt is formed. Mixing the solution of freshly prepared diazonium salt with cuprous chloride or cuprous bromide results in the replacement of the diazonium group by $-\mathrm{Cl}$ or $-\mathrm{Br}$.
Replacement of the diazonium group by iodine does not require the presence of cuprous halide and is done simply by shaking the diazonium salt with potassium iodide.
Example 10.4 Write the products of the following reactions:
Solution
Intext Questions
10.2 Why is sulphuric acid not used during the reaction of alcohols with KI?
Show Answer
Answer
In the presence of sulphuric acid $\left(\mathrm{H_2} \mathrm{SO_4}\right)$, $\mathrm{KI}$ produces $\mathrm{HI}$
$ 2 \mathrm{KI}+\mathrm{H_2} \mathrm{SO_4} \longrightarrow 2 \mathrm{KHSO_4}+2 \mathrm{HI} $
Since $\mathrm{H_2} \mathrm{SO_4}$ is an oxidizing agent, it oxidizes $\mathrm{HI}$ (produced in the reaction to $\mathrm{I_2}$.
$ 2 \mathrm{HI}+\mathrm{H_2} \mathrm{SO_4} \longrightarrow \mathrm{I_2}+\mathrm{SO_2}+\mathrm{H_2} \mathrm{O} $
As a result, the reaction between alcohol and $\mathrm{HI}$ to produce alkyl iodide cannot occur. Therefore, sulphuric acid is not used during the reaction of alcohols with KI. Instead, a non-oxidizing acid such as $\mathrm{H_3} \mathrm{PO_4}$ is used.
10.3 Write structures of different dihalogen derivatives of propane.
Show Answer
Answer
There are four different dihalogen derivatives of propane. The structures of these derivatives are shown below.
(i)
$\mathrm{Br - \underset{\substack{| \\ \mathrm{Br}}}{CH} - CH_2 -CH_3}$
1,1-Dibromopropane
(ii)
$\mathrm{CH_3 - \stackrel{\substack{\mathrm{Br} \\ |}}{\underset{\substack{ | \\ \mathrm{Br}}}{C}} -CH_3}$
2,2-Dibromopropane
(iii)
$\mathrm{Br -CH_3 - \stackrel{\substack{\mathrm{Br} \\ |}}{CH} - CH_3}$
1,2-Dibromopropane
(iv)
$\mathrm{Br - CH_2 -CH_2 -CH_2 -Br}$
1,3-Dibromopropane
10.4 Among the isomeric alkanes of molecular formula C5H12, identify the one that on photochemical chlorination yields (i) A single monochloride. (ii) Three isomeric monochlorides. (iii) Four isomeric monochlorides.
Show Answer
Answer
(i) To have a single monochloride, there should be only one type of $\mathrm{H}$-atom in the isomer of the alkane of the molecular formula $\mathrm{C_5} \mathrm{H_12}$. This is because, replacement of any $\mathrm{H}$-atom leads to the formation of the same product. The isomer is neopentane.
$\mathrm{CH_3 - \stackrel{\substack{\mathrm{CH_3} \\ |}}{\underset{\substack{ | \\ \mathrm{CH_3}}}{C}} -CH_3}$
Neopentane
Therefore, the isomer is $n$-pentane. It can be observed that there are three types of $\mathrm{H}$ atoms labelled as $a, b$ and $c$ in $n$-pentane.
(iii) To have four isomeric monochlorides, the isomer of the alkane of the molecular formula $\mathrm{C_5} \mathrm{H_12}$ should contain four different types of $\mathrm{H}$-atoms. Therefore, the isomer is 2-methylbutane. It can be observed that there are four types of $\mathrm{H}$ atoms labelled as $a, b, c$, and $d$ in 2-methylbutane.
10.5 Draw the structures of major monohalo products in each of the following reactions:
Show Answer
Answer
(i)
(ii)
10.6 Physical Properties
Alkyl halides are colourless when pure. However, bromides and iodides develop colour when exposed to light. Many volatile halogen compounds have sweet smell.
Melting and boiling points
Methyl chloride, methyl bromide, ethyl chloride and some chlorofluoromethanes are gases at room temperature. Higher members are liquids or solids. As we have already learnt, molecules of organic halogen compounds are generally polar. Due to greater polarity as well as higher molecular mass as compared to the parent hydrocarbon, the intermolecular forces of attraction (dipole-dipole and van der Waals) are stronger in the halogen derivatives. That is why the boiling points of chlorides, bromides and iodides are considerably higher than those of the hydrocarbons of comparable molecular mass.
The attractions get stronger as the molecules get bigger in size and have more electrons. The pattern of variation of boiling points of different halides is depicted in Fig. 10.1. For the same alkyl group, the boiling points of alkyl halides decrease in the order: $\mathrm{RI}>\mathrm{RBr}>\mathrm{RCl}>\mathrm{RF}$. This is because with the increase in size and mass of halogen atom, the magnitude of van der Waal forces increases.
Fig. 10.1: Comparison of boiling points of some alkyl halides
The boiling points of isomeric haloalkanes decrease with increase in branching (Unit 12, Class XI). For example, 2-bromo-2- methylpropane has the lowest boiling point among the three isomers.
$\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{CH_2} \mathrm{Br}$
Boiling points of isomeric dihalobenzenes are very nearly the same. However, the para-isomers are high melting as compared to their orthoand meta-isomers. It is due to symmetry of para-isomers that fits in crystal lattice better as compared to ortho- and meta-isomers.
Density
Bromo, iodo and polychloro derivatives of hydrocarbons are heavier than water. The density increases with increase in number of carbon atoms, halogen atoms and atomic mass of the halogen atoms (Table 10.3).
Table 10.3: Density of Some Haloalkanes
Compound | Density (g/mL) | Compound | Density (g/mL) |
---|---|---|---|
$\mathrm{n}-\mathrm{C}_3 \mathrm{H}_7 \mathrm{Cl}$ | 0.89 | $\mathrm{CH}_2 \mathrm{Cl}_2$ | 1.336 |
$\mathrm{n}-\mathrm{C}_3 \mathrm{H}_7 \mathrm{Br}$ | 1.335 | $\mathrm{CHCl}_3$ | 1.489 |
$\mathrm{n}-\mathrm{C}_3 \mathrm{H}_7 \mathrm{I}$ | 1.747 | $\mathrm{CCl}_4$ | 1.595 |
Solubility
The haloalkanes are very slightly soluble in water. In order to dissolve haloalkane in water, energy is required to overcome the attractions between the haloalkane molecules and break the hydrogen bonds between water molecules. Less energy is released when new attractions are set up between the haloalkane and the water molecules as these are not as strong as the original hydrogen bonds in water. As a result, the solubility of haloalkanes in water is low. However, haloalkanes tend to dissolve in organic solvents because the new intermolecular attractions between haloalkanes and solvent molecules have much the same strength as the ones being broken in the separate haloalkane and solvent molecules.
Intext Questions
10.6 Arrange each set of compounds in order of increasing boiling points.
(i) Bromomethane, Bromoform, Chloromethane, Dibromomethane.
(ii) 1-Chloropropane, Isopropyl chloride, 1-Chlorobutane.
Show Answer
Answer
For alkyl halides containing the same alkyl group, the boiling point increases with an increase in the atomic mass of the halogen atom.
Since the atomic mass of $\mathrm{Br}$ is greater than that of $\mathrm{Cl}$, the boiling point of bromomethane is higher than that of chloromethane.
Further, for alkyl halides containing the same alkyl group, the boiling point increases with an increase in the number of halides. Therefore, the boiling point of Dibromomethane is higher than that of chloromethane and bromomethane, but lower than that of bromoform.
Hence, the given set of compounds can be arranged in the order of their increasing boiling points as:
Chloromethane $<$ Bromomethane $<$ Dibromomethane $<$ Bromoform.
For alkyl halides containing the same halide, the boiling point increases with an increase in the size of the alkyl group. Thus, the boiling point of 1-chlorobutane is higher than that of isopropyl chloride and 1-chloropropane.
Further, the boiling point decreases with an increase in branching in the chain. Thus, the boiling point of isopropyl alcohol is lower than that of 1-chloropropane.
Hence, the given set of compounds can be arranged in the increasing order of their boiling points as:
Isopropyl chloride $<1$-Chloropropane $<1$-Chlorobutane
10.7 Chemical Reactions
10.7.1 Reactions of Haloalkanes
The reactions of haloalkanes may be divided into the following categories: 1. Nucleophilic substitution 2. Elimination reactions 3. Reaction with metals.
(1) Nucleophilic substitution reactions You have learnt in Class XI that nucleophiles are electron rich species. Therefore, they attack at that part of the substrate molecule which is electron deficient. The reaction in which a nucleophile replaces already existing nucleophile in a molecule is called nucleophilic substitution reaction. Haloalkanes are substrate in these reactions. In this type of reaction, a nucleophile reacts with haloalkane (the substrate) having a partial positive charge on the carbon atom bonded to halogen. A substitution reaction takes place and halogen atom, called leaving group departs as halide ion. Since the substitution reaction is initiated by a nucleophile, it is called nucleophilic substitution reaction.
It is one of the most useful classes of organic reactions of alkyl halides in which halogen is bonded to sp3 hybridised carbon. The products formed by the reaction of haloalkanes with some common nucleophiles are given in Table 10.4.
Table 10.4: Nucleophilic Substitution of Alkyl Halides (R–X) $$ \mathrm{R}-\mathrm{X}+\mathrm{Nu}^{-} \rightarrow \mathrm{R}-\mathrm{Nu}+\mathrm{X}^{-} $$
Reagent | Nucleophile $\left(\mathbf{N u}^{-}\right)$ |
Substitution product R-Nu |
Class of main product |
---|---|---|---|
$\mathrm{NaOH}(\mathrm{KOH})$ | $\mathrm{HO}^{-}$ | $\mathrm{ROH}$ | Alcohol |
$\mathrm{H}_2 \mathrm{O}$ | $\mathrm{H}_2 \mathrm{O}$ | $\mathrm{ROH}$ | Alcohol |
$\mathrm{NaOR}^{\prime}$ | $\mathrm{R}^{\prime} \mathrm{O}^{-}$ | $\mathrm{ROR}^{\prime}$ | Ether |
$\mathrm{NaI}$ | $\mathrm{I}^{-}$ | $\mathrm{R}-\mathrm{I}$ | Alkyl iodide |
$\mathrm{NH}_3$ | $\mathrm{NH}_3$ | $\mathrm{RNH}_2$ | Primary amine |
$\mathrm{R}^{\prime} \mathrm{NH}_2$ | $\mathrm{R}^{\prime} \mathrm{NH}_2$ | $\mathrm{RNHR}^{\prime}$ | Sec. amine |
$\mathrm{R}^{\prime} \mathrm{R}^{\prime \prime N H}$ | $\mathrm{R}^{\prime} \mathrm{R}^{\prime \prime} \mathrm{NH}$ | $\mathrm{RNR}^{\prime} \mathrm{R}^{\prime \prime}$ | Tert. amine |
$\mathrm{KCN}$ | $\overline{\mathrm{C}} \equiv \mathrm{N}:$ | $\mathrm{RCN}$ | Nitrile (cyanide) |
$\mathrm{AgCN}$ | $\mathrm{Ag}-\mathrm{CN}$ : | $\mathrm{RNC}$ (isocyanide) |
Isonitrile |
$\mathrm{KNO}_2$ | $\mathrm{O}=\mathrm{N}-\mathrm{O}$ | $\mathrm{R}-\mathrm{O}-\mathrm{N}=\mathrm{O}$ | Alkyl nitrite |
$\mathrm{AgNO}_2$ | $\mathrm{Ag}-\ddot{\mathrm{O}}-\mathrm{N}=\mathrm{O}$ | $\mathrm{R}-\mathrm{NO}_2$ | Nitroalkane |
$\mathrm{R}^{\prime} \mathrm{COOAg}$ | $\mathrm{R}^{\prime} \mathrm{COO}^{-}$ | $\mathrm{R}^{\prime} \mathrm{COOR}$ | Ester |
$\mathrm{LiAlH}_4$ | $\mathrm{H}$ | $\mathrm{RH}$ | Hydrocarbon |
$\mathrm{R}^{\prime-} \mathrm{M}^{+}$ | $\mathrm{R}^{\prime-}$ | $\mathrm{RR}^{\prime}$ | Alkane |
Groups like cyanides and nitrites possess two nucleophilic centres and are called ambident nucleophiles. Actually cyanide group is a hybrid of two contributing structures and therefore can act as a nucleophile in two different ways $\left[{ }^{\circ} \mathrm{C} \equiv \mathrm{N} \leftrightarrow: \mathrm{C}=\mathrm{N}^{\ominus}\right]$, i.e., linking through carbon atom resulting in alkyl cyanides and through nitrogen atom leading to isocyanides. Similarly nitrite ion also repreșents an ambident through oxygen results in alkyl nitrites while through nitrogen atom, it leads to nitroalkanes.
Example 10.5
Haloalkanes react with $\mathrm{KCN}$ to form alkyl cyanides as main product while $\mathrm{AgCN}$ forms isocyanides as the chief product. Explain.
Solution
KCN is predominantly ionic and provides cyanide ions in solution. Although both carbon and nitrogen atoms are in a position to donate electron pairs, the attack takes place mainly through carbon atom and not through nitrogen atom since $\mathrm{C}-\mathrm{C}$ bond is more stable than $\mathrm{C}-\mathrm{N}$ bond. However, AgCN is mainly covalent in nature and nitrogen is free to donate electron pair forming isocyanide as the main product.
Mechanism: This reaction has been found to proceed by two different mechanims which are described below:
(a) Substitution nucleophilic bimolecular ( $\left.\mathbf{S_N} \mathbf{2}\right.$ )
The reaction between $\mathrm{CH_3} \mathrm{Cl}$ and hydroxide ion to yield methanol and chloride ion follows a second order kinetics, i.e., the rate depends upon the concentration of both the reactants
The solid wedge represents the bond coming out of the paper, dashed line going down the paper and a straight line representing bond in the plane of the paper.
Fig. 10.2: Red ball represents the incoming hydroxide ion and green ball represents the outgoing halide ion
In the year 1937, Edward Davies Hughes and Sir Christopher Ingold proposed a mechanism for an $S_N 2$ reaction.
It depicts a bimolecular nucleophilic substitution $\left(\mathrm{S_\mathrm{N}} 2\right)$ reaction; the incoming nucleophile interacts with alkyl halide causing the carbon-halide bond to break and a new bond is formed between carbon and attacking nucleophile. Here it is $\mathrm{C}-\mathrm{O}$ bond formed between $\mathrm{C}$ and $-\mathrm{OH}$. These two processes take place simultaneously in a single step and no intermediate is formed. As the reaction progresses and the bond between the incoming nucleophile and the carbon atom starts forming, the bond between carbon atom and leaving group weakens. As this happens, the three carbon-hydrogen bonds of the substrate start moving away from the attacking nucleophile. In transition state all the three $\mathrm{C}-\mathrm{H}$ bonds are in the same plane and the attacking and leaving nucleophiles are partially attached to the carbon. As the attacking nucleophile approaches closer to the carbon, $\mathrm{C}-\mathrm{H}$ bonds still keep on moving in the same direction till the attacking nucleophile attaches to carbon and leaving group leaves the carbon. As a result configuration is inverted, the configuration (See box) of carbon atom under attack inverts in much the same way as an umbrella is turned inside out when caught in a strong wind. This process is called as inversion of configuration. In the transition state, the carbon atom is simultaneously bonded to incoming nucleophile and the outgoing leaving group. Such structures are unstable and cannot be isolated. Thus, in the transition state, carbon is simultaneously bonded to five atoms.
Configuration
Spacial arrangement of functional groups around carbon is called its configuration. See the structures (A) and (B) given below carefully.
These are the two structures of the same compound. They differ in spacial arrangement of functional groups attached to carbon. Structure (A) is mirror image of Structure (B). We say configuration of carbon in structure (A) is mirror image of the configuration of carbon in structure (B).
Hughes worked under Ingold and earned a D.Sc. degree from the University of London.
Since this reaction requires the approach of the nucleophile to the carbon bearing the leaving group, the presence of bulky substituents on or near the carbon atom have a dramatic inhibiting effect. Of the simple alkyl halides, methyl halides react most rapidly in $\mathrm{S_\mathrm{N}} 2$ reactions because there are only three small hydrogen atoms. Tertiary halides are the least reactive because bulky groups hinder the approaching
nucleophiles. Thus the order of reactivity followed is: Primary halide > Secondary halide > Tertiary halide.
Fig. 10.3: Steric effects in SN2 reaction. The relative rate of SN2 reaction is given in parenthesis
(b) Substitution nucleophilic unimolecular $\left(\mathbf{S_N} \mathbf{1}\right)$ $\mathrm{S_\mathrm{N}} 1$ reactions are generally carried out in polar protic solvents (like water, alcohol, acetic acid, etc.). The reaction between tertbutyl bromide and hydroxide ion yields tert-butyl alcohol and follows the first order kinetics, i.e., the rate of reaction depends upon the concentration of only one reactant, which is tert- butyl bromide.
It occurs in two steps. In step I, the polarised $\mathrm{C}-\mathrm{Br}$ bond undergoes slow cleavage to produce a carbocation and a bromide ion. The carbocation thus formed is then attacked by nucleophile in step II to complete the substitution reaction.
Step I is the slowest and reversible. It involves the $\mathrm{C}-\mathrm{Br}$ bond breaking for which the energy is obtained through solvation of halide ion with the proton of protic solvent. Since the rate of reaction depends upon the slowest step, the rate of reaction depends only on the concentration of alkyl halide and not on the concentration of hydroxide ion. Further, greater the stability of carbocation, greater will be its ease of formation from alkyl halide and faster will be the rate of reaction. In case of alkyl halides, $3^{0}$ alkyl halides undergo $\mathrm{S_\mathrm{N}} 1$ reaction very fast because of the high stability of $3^{0}$ carbocations. We can sum up the order of reactivity of alkyl halides towards $\mathrm{S_\mathrm{N}} 1$ and $\mathrm{S_\mathrm{N}} 2$ reactions as follows:
For the same reasons, allylic and benzylic halides show high reactivity towards the $\mathrm{S_\mathrm{N}} 1$ reaction. The carbocation thus formed gets stabilised through resonance (Unit 8, Class XI) as shown below:
Example 10.6 In the following pairs of halogen compounds, which would undergo $\mathrm{S}_{\mathrm{N}} 2$ reaction faster?
Solution
It is primary halide and therefore undergoes $\mathrm{S}_{\mathrm{N}} 2$ reaction faster.
As iodine is a better leaving group because of its large size, it will be released at a faster rate in the presence of incoming nucleophile.
Example 10.7 Predict the order of reactivity of the following compounds in $\mathrm{S_\mathrm{N}} 1$ and $\mathrm{S_\mathrm{N}} 2$ reactions:
(i) The four isomeric bromobutanes
(ii) $\mathrm{C_6} \mathrm{H_5} \mathrm{CH_2} \mathrm{Br}, \mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}, \mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{Br}, \mathrm{C_6} \mathrm{H_5} \mathrm{C}\left(\mathrm{CH_3}\right)\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}$
Solution (i) $$ \begin{aligned} & \mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{Br}<\left(\mathrm{CH}_3\right)_2 \mathrm{CHCH}_2 \mathrm{Br}<\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}(\mathrm{Br}) \mathrm{CH}_3<\left(\mathrm{CH}_3\right)_3 \mathrm{CBr}\left(\mathrm{S}_N 1\right) \\ & \mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{Br}>\left(\mathrm{CH}_3\right)_2 \mathrm{CHCH}_2 \mathrm{Br}>\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}(\mathrm{Br}) \mathrm{CH}_3>\left(\mathrm{CH}_3\right)_3 \mathrm{CBr}\left(\mathrm{S}_N 2\right) \end{aligned} $$
Of the two primary bromides, the carbocation intermediate derived from $\left(\mathrm{CH_3}\right)_2 \mathrm{CHCH_2} \mathrm{Br}$ is more stable than derived from $\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{CH_2} \mathrm{Br}$ because of greater electron donating inductive effect of $\left(\mathrm{CH_3}\right)_2 \mathrm{CH}$ - group. Therefore, $\left(\mathrm{CH_3}\right)_2 \mathrm{CHCH_2} \mathrm{Br}$ is more reactive than $\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{CH_2} \mathrm{Br}$ in $\mathrm{S_N} 1$ reactions. $\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH}(Br) \mathrm{CH_3}$ is a secondary bromide and $\left(\mathrm{CH_3}\right)_3 \mathrm{CBr}$ is a tertiary bromide. Hence the above order is followed in
$\mathrm{S_\mathrm{N}}$. The reactivity in $\mathrm{S_\mathrm{N}} 2$ reactions follows the reverse order as the steric hinderance around the electrophilic carbon increases in that order.
(ii) $\mathrm{C_6} \mathrm{H_5} \mathrm{C}\left(\mathrm{CH_3}\right)\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}>\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}>\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{Br}>\mathrm{C_6} \mathrm{H_5} \mathrm{CH_2} \mathrm{Br}\left(\mathrm{S_N} \mathrm{l}\right)$ $\left(\mathrm{C_6} \mathrm{H_5} \mathrm{C_2} \mathrm{CH_3}\right)\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}<\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}<\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{Br}<\mathrm{C_6} \mathrm{H_5} \mathrm{CH_2} \mathrm{Br}\left(\mathrm{S_\mathrm{N}} 2\right)$ Of the two secondary bromides, the carbocation intermediate obtained from $\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}$ is more stable than obtained from $\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{Br}$ because it is stabilised by two phenyl groups due to resonance. Therefore, the former bromide is more reactive than the latter in $\mathrm{S_\mathrm{N}} 1$ reactions. A phenyl group is bulkier than a methyl group. Therefore, $\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{C_6} \mathrm{H_5}\right) \mathrm{Br}$ is less reactive than $\mathrm{C_6} \mathrm{H_5} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{Br}$ in $\mathrm{S_\mathrm{N}} 2$ reactions.
William Nicol (1768 - 1851) developed the first prism that produced plane polarised light.
(c) Stereochemical aspects of nucleophilic substitution reactions In order to understand the stereochemical aspects of substitution reactions, we need to learn some basic stereochemical principles and notations (optical activity, chirality, retention, inversion, racemisation, etc.).
(i) Optical activity: Plane of plane polarised light produced by passing ordinary light through Nicol prism is rotated when it is passed through the solutions of certain compounds. Such compounds are called optically active compounds. The angle by which the plane polarised light is rotated is measured by an instrument called polarimeter. If the compound rotates the plane of plane polarised light to the right, i.e., clockwise direction, it is called dextrorotatory (Greek for right rotating) or the d-form and is indicated by placing a positive (+) sign before the degree of rotation. If the light is rotated towards left (anticlockwise direction), the compound is said to be laevo-rotatory or the l-form and a negative (–) sign is placed before the degree of rotation. Such (+) and (–) isomers of a compound are called optical isomers and the phenomenon is termed as optical isomerism.
Jacobus Hendricus Van’t Hoff (1852-1911) received the first Nobel Prize in Chemistry in 1901 for his work on solutions.
(ii) Molecular asymmetry, chirality and enantiomers: The observation of Louis Pasteur (1848) that crystals of certain compounds exist in the form of mirror images laid the foundation of modern stereochemistry. He demonstrated that aqueous solutions of both types of crystals showed optical rotation, equal in magnitude (for solution of equal concentration) but opposite in direction. He believed that this difference in optical activity was associated with the three dimensional arrangements of atoms in the molecules (configurations) of two types of crystals. Dutch scientist, J. Van’t Hoff and French scientist, C. Le Bel in the same year (1874), independently argued that the spatial arrangement of four groups (valencies) around a central carbon is tetrahedral and if all the substituents attached to that carbon are different, the mirror image of the molecule is not superimposed (overlapped) on the molecule; such a carbon is called asymmetric carbon or stereocentre. The resulting molecule would lack symmetry and is referred to as asymmetric molecule. The asymmetry of the molecule along with non superimposability of mirror images is responsible for the optical activity in such organic compounds.
Chirality
Fig. 10.4: Some common examples of chiral and achiral objects
The symmetry and asymmetry are also observed in many day to day objects: a sphere, a cube, a cone, are all identical to their mirror images and can be superimposed. However, many objects are non superimposable on their mirror images. For example, your left and right hand look similar but if you put your left hand on your right hand by moving them in the same plane, they do not coincide. The objects which are nonsuperimposable on their mirror image (like a pair of hands) are said to be chiral and this property is known as chirality. Chiral molecules are optically active, while the objects, which are, superimposable on their mirror images are called achiral. These molecules are optically inactive.
The above test of molecular chirality can be applied to organic molecules by constructing models and its mirror images or by drawing three dimensional structures and attempting to superimpose them in our minds. There are other aids, however, that can assist us in recognising chiral molecules. One such aid is the presence of a single asymmetric carbon atom. Let us consider two simple molecules propan-2-ol (Fig.10.5) and butan-2-ol (Fig.10.6) and their mirror images.
Fig. 10.5: B is mirror image of A; B is rotated by 180o and C is obtained; C is superimposable on A.
As you can see very clearly, propan-2-ol (A) does not contain an asymmetric carbon, as all the four groups attached to the tetrahedral carbon are not different. We rotate the mirror image (B) of the molecule by $180^{\circ}$ (structure C) and try to overlap the structure (C) with the structure (A), these structures completely overlap. Thus propan-2-ol is an achiral molecule.
Fig. 10.6: E is mirror image of D; E is rotated by 180 to get F and F is non superimposable on its mirror image D.
Butan-2-ol has four different groups attached to the tetrahedral carbon and as expected is chiral. Some common examples of chiral molecules such as 2-chlorobutane, 2, 3-dihyroxypropanal, $\left(\mathrm{OHC}-\mathrm{CHOH}-\mathrm{CH_2} \mathrm{OH}\right)$, bromochloro-iodomethane $(\mathrm{BrClCHI}), 2$-bromopropanoic acid $\left(\mathrm{H_3} \mathrm{C}-\mathrm{CHBr}-\mathrm{COOH}\right)$, etc.
Fig. 10.7: A chiral molecule and its mirror image
The stereoisomers related to each other as nonsuperimposable mirror images are called enantiomers (Fig. 10.7). $\mathrm{A}$ and $\mathrm{B}$ in Fig. 10.5 and $\mathrm{D}$ and $\mathrm{E}$ in Fig. 10.6 are enantiomers.
Enantiomers possess identical physical properties namely, melting point, boiling point, refractive index, etc. They only differ with respect to the rotation of plane polarised light. If one of the enantiomer is dextro rotatory, the other will be laevo rotatory.
A mixture containing two enantiomers in equal proportions will have zero optical rotation, as the rotation due to one isomer will be cancelled by the rotation due to the other isomer. Such a mixture is known as racemic mixture or racemic modification. A racemic mixture is represented by prefixing $d l$ or $( \pm)$ before the name, for example $( \pm)$ butan-2-ol. The process of conversion of enantiomer into a racemic mixture is known as racemisation.
Example 10.8
Identify chiral and achiral molecules in each of the following pair of compounds. Wedge and Dash representations according to Class XI.
(iii) $\mathrm{CH_3} \mathrm{CHCH_2} \mathrm{CH_3}$ $\mathrm{Br}$
$\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{CH_2} \mathrm{Br}$
Solution
(iii) Retention: Retention of configuration is the preservation of the spatial arrangement of bonds to an asymmetric centre during a chemical reaction or transformation.
In general, if during a reaction, no bond to the stereocentre is broken, the product will have the same general configuration of groups around the stereocentre as that of reactant. Such a reaction is said to proceed with retention of the configuration. Consider as an example, the reaction that takes place when (–)-2-methylbutan-1-ol is heated with concentrated hydrochloric acid.
It is important to note that configuration at a symmetric centre in the reactant and product is same but the sign of optical rotation has changed in the product. This is so because two different compounds with same configuration at asymmetric centre may have different optical rotation. One may be dextrorotatory (plus sign of optical rotation) while other may be laevorotatory (negative sign of optical rotation).
(iv) Inversion, retention and racemisation: There are three outcomes for a reaction at an asymmetric carbon atom, when a bond directly linked to an asymmetric carbon atom is broken. Consider the replacement of a group $\mathrm{X}$ by $\mathrm{Y}$ in the following reaction;
If (A) is the only compound obtained, the process is called retention of configuration. Note that configuration has been rotated in A.
If $(\mathrm{B})$ is the only compound obtained, the process is called inversion of configuration. Configuration has been inverted in $\mathrm{B}$.
If a 50:50 mixture of $\mathrm{A}$ and $\mathrm{B}$ is obtained then the process is called racemisation and the product is optically inactive, as one isomer will rotate the plane polarised light in the direction opposite to another.
Now let us have a fresh look at $S_{N} 1$ and $S_{N} 2$ mechanisms by taking examples of optically active alkyl halides.
In case of optically active alkyl halides, the product formed as a result of $\mathrm{S_\mathrm{N}} 2$ mechanism has the inverted configuration as compared to the reactant. This is because the nucleophile attaches itself on the side opposite to the one where the halogen atom is present. When (-)-2-bromooctane is allowed to react with sodium hydroxide, $(+)$-octan-2-ol is formed with the $-\mathrm{OH}$ group occupying the position opposite to what bromide had occupied.
$$ \underset{\mathrm{C_6} \mathrm{H_13}^{+}}{\mathrm{H_3} \mathrm{C}} \mathrm{HO}+\underset{\mathrm{C_6} \mathrm{H_13}}{\mathrm{CH_3}}+\mathrm{Br}^{\ominus} $$
Thus, $\mathrm{S_\mathrm{N}} 2$ reactions of optically active halides are accompanied by inversion of configuration.
In case of optically active alkyl halides, $\mathrm{S_\mathrm{N}} 1$ reactions are accompanied by racemisation. Can you think of the reason why it happens? Actually the carbocation formed in the slow step being $s p^{2}$ hybridised is planar (achiral). The attack of the nucleophile may be accomplished from either side of the plane of carbocation resulting in a mixture of products, one having the same configuration (the $-\mathrm{OH}$ attaching on the side opposite to halide ion). This may be illustrated by hydrolysis of optically active 2–bromobutane, which results in the formation of ( $\pm$ )-butan-2-ol.
Location of a and b carbon in a molecule
Carbon on which halogen atom is directly attached is called a-carbon and the carbon atom adjacent to this carbon is called b-carbon.
2. When a haloalkane with $\beta$-hydrogen atom is heated with alcoholic solution of potassium hydroxide, there is elimination of hydrogen atom from $\beta$-carbon and a halogen atom from the $\alpha$-carbon atom.
As a result, an alkene is formed as a product. Since $\beta$-hydrogen atom is involved in elimination, it is often called $\beta$-elimination.
If there is possibility of formation of more than one alkene due to the availability of more than one b-hydrogen atoms, usually one alkene is formed as the major product. These form part of a pattern first observed by Russian chemist, Alexander Zaitsev (also pronounced as Saytzeff) who in 1875 formulated a rule which can be summarised as “in dehydrohalogenation reactions, the preferred product is that alkene which has the greater number of alkyl groups attached to the doubly bonded carbon atoms.” Thus, 2-bromopentane gives pent-2-ene as the major product.
Elimination versus substitution
A chemical reaction is the result of competition; it is a race that is won by the fastest runner. A collection of molecules tend to do, by and large, what is easiest for them. An alkyl halide with $\beta$-hydrogen atoms when reacted with a base or a nucleophile has two competing routes: substitution $\left(\mathrm{S_\mathrm{N}} 1\right.$ and $\left.\mathrm{S_\mathrm{N}} 2\right)$ and elimination. Which route will be taken up depends upon the nature of alkyl halide, strength and size of base/nucleophile and reaction conditions. Thus, a bulkier nucleophile will prefer to act as a base and abstracts a proton rather than approach a tetravalent carbon atom (steric reasons) and vice versa. Similarly, a primary alkyl halide will prefer a $\mathrm{S_\mathrm{N}} 2$ reaction, a secondary halide- $\mathrm{S_\mathrm{N}} 2$ or elimination depending upon the strength of base/nucleophile and a tertiary halide- $\mathrm{S_\mathrm{N}} 1$ or elimination depending upon the stability of carbocation or the more substituted alkene.
3. Reaction with metals
Most organic chlorides, bromides and iodides react with certain metals to give compounds containing carbon-metal bonds. Such compounds are known as organo-metallic compounds. An important class of organo-metallic compounds discovered by Victor Grignard in 1900 is alkyl magnesium halide, RMgX, referred as Grignard Reagents. These reagents are obtained by the reaction of haloalkanes with magnesium metal in dry ether.
$$\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{Br}+\mathrm{Mg} \xrightarrow{\text { dry ether }} \underset{\text { Grignard reagent }}{\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{MgBr}}$$
Victor Grignard had a strange start in academic life for a chemist - he took a maths degree. When he eventually switched to chemistry, it was not to the mathematical province of physical chemistry but to organic chemistry. While attempting to find an efficient catalyst for the process of methylation, he noted that Zn in diethyl ether had been used for this purpose and wondered whether the Mg/ether combination might be successful. Grignard reagents were first reported in 1900 and Grignard used this work for his doctoral thesis in 1901. In 1910, Grignard obtained a professorship at the University of Nancy and in 1912, he was awarded the Nobel prize for Chemistry which he shared with Paul Sabatier who had made advances in nickel catalysed hydrogenation.
In the Grignard reagent, the carbon-magnesium bond is covalent but highly polar, with carbon pulling electrons from electropositive magnesium; the magnesium halogen bond is essentially ionic.
$$ \begin{aligned} & \delta-{ }\delta+{} \delta-\\ & \mathrm{R}-\mathrm{Mg} \mathrm{X} \end{aligned} $$
Grignard reagents are highly reactive and react with any source of proton to give hydrocarbons. Even water, alcohols, amines are sufficiently acidic to convert them to corresponding hydrocarbons.
$$ \mathrm{RMgX}+\mathrm{H_2} \mathrm{O} \longrightarrow \mathrm{RH}+\mathrm{Mg}(\mathrm{OH}) \mathrm{X} $$
It is therefore necessary to avoid even traces of moisture from a Grignard reagent. That is why reaction is carried out in dry ether. On the other hand, this could be considered as one of the methods for converting halides to hydrocarbons.
Wurtz reaction
Alkyl halides react with sodium in dry ether to give hydrocarbons containing double the number of carbon atoms present in the halide. This reaction is known as Wurtz reaction (Unit 13, Class XI).
$$2 \mathrm{RX}+2 \mathrm{Na} \longrightarrow \mathrm{RR}+2 \mathrm{NaX}$$
10.7.2 Reactions of Haloarenes
1. Nucleophilic substitution
Aryl halides are extremely less reactive towards nucleophilic substitution reactions due to the following reasons:
(i) Resonance effect : In haloarenes, the electron pairs on halogen atom are in conjugation with p-electrons of the ring and the following resonating structures are possible.
$\mathrm{C}-\mathrm{Cl}$ bond acquires a partial double bond character due to resonance. As a result, the bond cleavage in haloarene is difficult than haloalkane and therefore, they are less reactive towards nucleophilic substitution reaction.
(ii) Difference in hybridisation of carbon atom in $C-X$ bond: In haloalkane, the carbon atom attached to halogen is $s p^{3}$ hybridised while in case of haloarene, the carbon atom attached to halogen is $s p^{2}$-hybridised.
The $s p^{2}$ hybridised carbon with a greater $s$-character is more electronegative and can hold the electron pair of $\mathrm{C}-\mathrm{X}$ bond more tightly than $s p^{3}$-hybridised carbon in haloalkane with less s-chararcter. Thus, $\mathrm{C}-\mathrm{Cl}$ bond length in haloalkane is $177 \mathrm{pm}$ while in haloarene is $169 \mathrm{pm}$. Since it is difficult to break a shorter bond than a longer bond, therefore, haloarenes are less reactive than haloalkanes towards nucleophilic substitution reaction.
(iii) Instability of phenyl cation: In case of haloarenes, the phenyl cation formed as a result of self-ionisation will not be stabilised by resonance and therefore, $\mathrm{S_\mathrm{N}} 1$ mechanism is ruled out.
(iv) Because of the possible repulsion, it is less likely for the electron rich nucleophile to approach electron rich arenes.
Replacement by hydroxyl group
Chlorobenzene can be converted into phenol by heating in aqueous sodium hydroxide solution at a temperature of 623K and a pressure of 300 atmospheres.
The presence of an electron withdrawing group $\left(-\mathrm{NO_2}\right)$ at ortho- and para-positions increases the reactivity of haloarenes.
The effect is pronounced when $\left(-\mathrm{NO_2}\right)$ group is introduced at orthoand para- positions. However, no effect on reactivity of haloarenes is observed by the presence of electron withdrawing group at meta-position. Mechanism of the reaction is as depicted:
Can you think why does $-\mathrm{NO}_2$ group show its effect only at ortho- and para- positions and not at meta- position?
As shown, the presence of nitro group at ortho- and para-positions withdraws the electron density from the benzene ring and thus facilitates the attack of the nucleophile on haloarene. The carbanion thus formed is stabilised through resonance. The negative charge appeared at ortho- and para- positions with respect to the halogen substituent is stabilised by $-\mathrm{NO}_2$ group while in case of meta-nitrobenzene, none of the resonating structures bear the negative charge on carbon atom bearing the $-\mathrm{NO}_2$ group. Therefore,the presence of nitro group at meta- position does not stabilise the negative charge and no effect on reactivity is observed by the presence of $-\mathrm{NO}_2$ group at meta-position.
2. Electrophilic substitution reactions
Haloarenes undergo the usual electrophilic reactions of the benzene ring such as halogenation, nitration, sulphonation and Friedel-Crafts reactions. Halogen atom besides being slightly deactivating is o, pdirecting; therefore, further substitution occurs at ortho- and parapositions with respect to the halogen atom. The o, p-directing influence of halogen atom can be easily understood if we consider the resonating structures of halobenzene as shown:
Due to resonance, the electron density increases more at ortho- and para-positions than at meta-positions. Further, the halogen atom because of its –I effect has some tendency to withdraw electrons from the benzene ring. As a result, the ring gets somewhat deactivated as compared to benzene and hence the electrophilic substitution reactions in haloarenes occur slowly and require more drastic conditions as compared to those in benzene.
Example 10.9 Although chlorine is an electron withdrawing group, yet it is ortho-, para- directing in electrophilic aromatic substitution reactions. Why?
Solution
Chlorine withdraws electrons through inductive effect and releases electrons through resonance. Through inductive effect, chlorine destabilises the intermediate carbocation formed during the electrophilic substitution.
Through resonance, halogen tends to stabilise the carbocation and the effect is more pronounced at ortho- and para- positions. The inductive effect is stronger than resonance and causes net electron withdrawal and thus causes net deactivation. The resonance effect tends to oppose the inductive effect for the attack at ortho- and parapositions and hence makes the deactivation less for ortho- and paraattack. Reactivity is thus controlled by the stronger inductive effect and orientation is controlled by resonance effect.
(i) Halogenation
(ii) Nitration
(iii) Sulphonation
(iv) Friedel-Crafts reaction
3. Reaction with metals
Wurtz-Fittig reaction
A mixture of an alkyl halide and aryl halide gives an alkylarene when treated with sodium in dry ether and is called Wurtz-Fittig reaction.
Fittig reaction
Aryl halides also give analogous compounds when treated with sodium in dry ether, in which two aryl groups are joined together. It is called Fittig reaction.
Intext Questions
10.7 Which alkyl halide from the following pairs would you expect to react more rapidly by an $\mathrm{S_\mathrm{N}} 2$ mechanism? Explain your answer.
Show Answer
Answer
(i)
2-bromobutane is a $2^{\circ}$ alkylhalide whereas 1 -bromobutane is a $1^{\circ}$ alkyl halide. The approaching of nucleophile is more hindered in 2-bromobutane than in 1-bromobutane. Therefore, 1-bromobutane reacts more rapidly than 2bromobutane by an $\mathrm{S_\mathrm{N}} 2$ mechanism.
(ii)
2-Bromobutane is $2^{\circ}$ alkylhalide whereas 2-bromo-2-methylpropane is $3^{\circ}$ alkyl halide. Therefore, greater numbers of substituents are present in $3^{\circ}$ alkyl halide than in $2^{\circ}$ alkyl halide to hinder the approaching nucleophile. Hence, $2-$ bromobutane reacts more rapidly than 2-bromo-2-methylpropane by an $\mathrm{S_\mathrm{N}} 2$ mechanism.
(iii)
Both the alkyl halides are primary. However, the substituent $-\mathrm{CH_3}$ is at a greater distance to the carbon atom linked to $\mathrm{Br}$ in 1-bromo-3-methylbutane than in 1-bromo-2-methylbutane. Therefore, the approaching nucleophile is less hindered in case of the former than in case of the latter. Hence, the former reacts faster than the latter by $\mathrm{S_\mathrm{N}} 2$ mechanism.
10.8 In the following pairs of halogen compounds, which compound undergoes faster $\mathrm{S_\mathrm{N}} 1$ reaction?
Show Answer
Answer
(i)
$\mathrm{S_\mathrm{N}} 1$ reaction proceeds via the formation of carbocation. The alkyl halide (I) is $3^{\circ}$ while (II) is $2^{\circ}$. Therefore, (I) forms $3^{\circ}$ carbocation while (II) forms $2^{\circ}$ carbocation. Greater the stability of the carbocation, faster is the rate of $\mathrm{S_\mathrm{N}} 1$ reaction. Since $3^{\circ}$ carbocation is more stable than $2^{\circ}$ carbocation. (I), i.e. 2 -chloro-2-methylpropane, undergoes faster $\mathrm{S_\mathrm{N}} 1$ reaction than (II) i.e., 3-chloropentane.
The alkyl halide (I) is $2^{\circ}$ while (II) is $1^{\circ} .2^{\circ}$ carbocation is more stable than $1^{\circ}$ carbocation. Therefore, $(\mathrm{I}), 2$ chloroheptane, undergoes faster $\mathrm{S_\mathrm{N}} 1$ reaction than (II), 1-chlorohexane.
10.9 Identify A, B, C, D, E, R and $R^1$ in the following:
Show Answer
Answer
Since $\mathrm{D}$ of $\mathrm{D_2} \mathrm{O}$ gets attached to the carbon atom to which $\mathrm{MgBr}$ is attached, $\mathrm{C}$ is
Therefore, the compound $\mathrm{R}$ - $\mathrm{Br}$ is
2-Bromopropane
When an alkyl halide is treated with $\mathrm{Na}$ in the presence of ether, a hydrocarbon containing double the number of carbon atoms as present in the original halide is obtained as product. This is known as Wurtz reaction. Therefore, the halide, $\mathrm{R}^{1}-\mathrm{X}$, is
Therefore, compound D is
And, compound $\mathrm{E}$ is
10.8 Polyhalogen Compounds
Carbon compounds containing more than one halogen atom are usually referred to as polyhalogen compounds. Many of these compounds are useful in industry and agriculture. Some polyhalogen compounds are described in this section.
10.8.1 Dichloromethane (Methylene chloride)
Dichloromethane is widely used as a solvent as a paint remover, as a propellant in aerosols, and as a process solvent in the manufacture of drugs. It is also used as a metal cleaning and finishing solvent. Methylene chloride harms the human central nervous system. Exposure to lower levels of methylene chloride in air can lead to slightly impaired hearing and vision. Higher levels of methylene chloride in air cause dizziness, nausea, tingling and numbness in the fingers and toes. In humans, direct skin contact with methylene chloride causes intense burning and mild redness of the skin. Direct contact with the eyes can burn the cornea.
10.8.2 Trichloromethane (Chloroform)
Chemically, chloroform is employed as a solvent for fats, alkaloids, iodine and other substances. The major use of chloroform today is in the production of the freon refrigerant R-22. It was once used as a general anaesthetic in surgery but has been replaced by less toxic, safer anaesthetics, such as ether. As might be expected from its use as an anaesthetic, inhaling chloroform vapours depresses the central nervous system. Breathing about 900 parts of chloroform per million parts of air (900 parts per million) for a short time can cause dizziness, fatigue, and headache. Chronic chloroform exposure may cause damage to the liver (where chloroform is metabolised to phosgene) and to the kidneys, and some people develop sores when the skin is immersed in chloroform. Chloroform is slowly oxidised by air in the presence of light to an extremely poisonous gas, carbonyl chloride, also known as phosgene. It is therefore stored in closed dark coloured bottles completely filled so that air is kept out.
$$2 \mathrm{CHCl}_3+\mathrm{O}_2 \xrightarrow{\text { light }} \underset{\text { Phosgene }}{2 \mathrm{COCl}_2}+2 \mathrm{HCl}$$
10.8.3 Triiodomethane (Iodoform)
It was used earlier as an antiseptic but the antiseptic properties are due to the liberation of free iodine and not due to iodoform itself. Due to its objectionable smell, it has been replaced by other formulations containing iodine.
10.8.4 Tetrachloromethane (Carbon tetrachloride)
It is produced in large quantities for use in the manufacture of refrigerants and propellants for aerosol cans. It is also used as feedstock in the synthesis of chlorofluorocarbons and other chemicals, pharmaceutical manufacturing, and general solvent use. Until the mid 1960s, it was also widely used as a cleaning fluid, both in industry, as a degreasing agent, and in the home, as a spot remover and as fire extinguisher. There is some evidence that exposure to carbon tetrachloride causes liver cancer in humans. The most common effects are dizziness, light headedness, nausea and vomiting, which can cause permanent damage to nerve cells. In severe cases, these effects can lead rapidly to stupor, coma, unconsciousness or death. Exposure to $\mathrm{CCl_4}$ can make the heart beat irregularly or stop. The chemical may irritate the eyes on contact. When carbon tetrachloride is released into the air, it rises to the atmosphere and depletes the ozone layer. Depletion of the ozone layer is believed to increase human exposure to ultraviolet rays, leading to increased skin cancer, eye diseases and disorders, and possible disruption of the immune system.
10.8.5 Freons
The chlorofluorocarbon compounds of methane and ethane are collectively known as freons. They are extremely stable, unreactive, non-toxic, noncorrosive and easily liquefiable gases. Freon $12\left(\mathrm{CCl_2} \mathrm{~F_2}\right)$ is one of the most common freons in industrial use. It is manufactured from tetrachloromethane by Swarts reaction. These are usually produced for aerosol propellants, refrigeration and air conditioning purposes. By 1974 , total freon production in the world was about 2 billion pounds annually. Most freon, even that used in refrigeration, eventually makes its way into the atmosphere where it diffuses unchanged into the stratosphere. In stratosphere, freon is able to initiate radical chain reactions that can upset the natural ozone balance.
10.8.6 p,p’-Dichlorodiphenyltrichloroethane(DDT)
DDT, the first chlorinated organic insecticides, was originally prepared in 1873, but it was not until 1939 that Paul Muller of Geigy Pharmaceuticals in Switzerland discovered the effectiveness of DDT as an insecticide. Paul Muller was awarded the Nobel Prize in Medicine and Physiology in 1948 for this discovery. The use of DDT increased enormously on a worldwide basis after World War II, primarily because of its effectiveness against the mosquito that spreads malaria and lice that carry typhus. However, problems related to extensive use of DDT began to appear in the late 1940s. Many species of insects developed resistance to DDT, and it was also discovered to have a high toxicity towards fish. The chemical stability of DDT and its fat solubility compounded the problem. DDT is not metabolised very rapidly by animals; instead, it is deposited and stored in the fatty tissues. If ingestion continues at a steady rate, DDT builds up within the animal over time. The use of DDT was banned in the United States in 1973, although it is still in use in some other parts of the world.
Summary
Alkyl/ Aryl halides may be classified as mono, di, or polyhalogen (tri-, tetra-, etc.) compounds depending on whether they contain one, two or more halogen atoms in their structures. Since halogen atoms are more electronegative than carbon, the carbonhalogen bond of alkyl halide is polarised; the carbon atom bears a partial positive charge, and the halogen atom bears a partial negative charge.
Alkyl halides are prepared by the free radical halogenation of alkanes, addition of halogen acids to alkenes, replacement of $-\mathrm{OH}$ group of alcohols with halogens using phosphorus halides, thionyl chloride or halogen acids. Aryl halides are prepared by electrophilic substitution to arenes. Fluorides and iodides are best prepared by halogen exchange method.
The boiling points of organohalogen compounds are comparatively higher than the corresponding hydrocarbons because of strong dipole-dipole and van der Waals forces of attraction. These are slightly soluble in water but completely soluble in organic solvents.
The polarity of carbon-halogen bond of alkyl halides is responsible for their nucleophilic substitution, elimination and their reaction with metal atoms to form organometallic compounds. Nucleophilic substitution reactions are categorised into $\mathrm{S_\mathrm{N}} 1$ and $\mathrm{S_\mathrm{N}} 2$ on the basis of their kinetic properties. Chirality has a profound role in understanding the reaction mechanisms of $\mathrm{S_\mathrm{N}} 1$ and $\mathrm{S_\mathrm{N}} 2$ reactions. $\mathrm{S_\mathrm{N}} 2$ reactions of chiral alkyl halides are characterised by the inversion of configuration while $\mathrm{S_\mathrm{N}} 1$ reactions are characterised by racemisation.
A number of polyhalogen compounds e.g., dichloromethane, chloroform, iodoform, carbon tetrachloride, freon and DDT have many industrial applications. However, some of these compounds cannot be easily decomposed and even cause depletion of ozone layer and are proving environmental hazards.
Exercises
10.1 Name the following halides according to IUPAC system and classify them as alkyl, allyl, benzyl (primary, secondary, tertiary), vinyl or aryl halides:
(i) $\left(\mathrm{CH_3}\right)_{2} \mathrm{CHCH}(\mathrm{Cl}) \mathrm{CH_3}$
(ii) $\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{CH}\left(\mathrm{C_2} \mathrm{H_5}\right) \mathrm{Cl}$
(iii) $\mathrm{CH_3} \mathrm{CH_2} \mathrm{C}\left(\mathrm{CH_3}\right)_{2} \mathrm{CH_2} \mathrm{I}$
(iv) $\left(\mathrm{CH_3}\right)_{3} \mathrm{CCH_2} \mathrm{CH}(\mathrm{Br}) \mathrm{C_6} \mathrm{H_5}$
(v) $\mathrm{CH_3} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{CH}(\mathrm{Br}) \mathrm{CH_3}$
(vi) $\mathrm{CH_3} \mathrm{C_2}\left(\mathrm{C_2} \mathrm{H_5}\right)_{2} \mathrm{CH_2} \mathrm{Br}$
(vii) $\mathrm{CH_3} \mathrm{C}(\mathrm{Cl})\left(\mathrm{C_2} \mathrm{H_5}\right) \mathrm{CH_2} \mathrm{CH_3}$
(viii) $\mathrm{CH_3} \mathrm{CH}=\mathrm{C}(\mathrm{Cl}) \mathrm{CH_2} \mathrm{CH}\left(\mathrm{CH_3}\right)_{2}$
(ix) $\mathrm{CH_3} \mathrm{CH}=\mathrm{CHC}(\mathrm{Br})\left(\mathrm{CH_3}\right)_{2}$
(x) $p$ - $\mathrm{ClC_6} \mathrm{H_4} \mathrm{CH_2} \mathrm{CH}\left(\mathrm{CH_3}\right)_{2}$
(xi) $m-\mathrm{ClCH_2} \mathrm{C_6} \mathrm{H_4} \mathrm{CH_2} \mathrm{C}\left(\mathrm{CH_3}\right)_{3}$
(xii) o-Br- $\mathrm{C_6} \mathrm{H_4} \mathrm{CH}\left(\mathrm{CH_3}\right) \mathrm{CH_2} \mathrm{CH_3}$
Show Answer
Answer
2-Chloro-3-methylbutane
(Secondary alkyl halide)
3-Chloro-4-methyhexane
(Secondary alkyl halide)
(iii)
1-Iodo-2, 2 -dimethylbutane
(Primary alkyl halide)
1-Bromo-3, 3-dimethyl-1-phenylbutane
(Secondary benzyl halide)
2-Bromo-3-methylbutane
(Secondary alkyl halide)
1-Bromo-2-ethyl-2-methylbutane
(Primary alkyl halide)
3-Chloro-3-methylpentane
(Tertiary alkyl halide)
(viii)
3-Chloro-5-methylhex-2-ene
(Vinyl halide)
4-Bromo-4-methylpent-2-ene
(Allyl halide)
1-Chloro-4-(2-methylpropyl) benzene
(Aryl halide)
1-Chloromethyl-3-(2, 2-dimethylpropyl) benzene
(Primary benzyl halide)
1-Bromo-2-(1-methylpropyl) benzene
(Aryl halide)
10.2 Give the IUPAC names of the following compounds:
(i) $\mathrm{CH_3} \mathrm{CH}(\mathrm{Cl}) \mathrm{CH}(\mathrm{Br}) \mathrm{CH_3}$
(ii) $\mathrm{CHF_2} \mathrm{CBrClF}$
(iii) $\mathrm{ClCH_2} \mathrm{C} \equiv \mathrm{CCH_2} \mathrm{Br}$
(iv) $\left(\mathrm{CCl_3}\right)_{3} \mathrm{CCl}$
(v) $\mathrm{CH_3} \mathrm{C}\left(p-\mathrm{ClC_6} \mathrm{H_4}\right)_{2} \mathrm{CH}(\mathrm{Br}) \mathrm{CH_3}$
(vi) $\left(\mathrm{CH_3}\right)_{3} \mathrm{CCH}=\mathrm{CClC_6} \mathrm{H_4} \mathrm{I}-p$
Show Answer
Answer
2-Bromo-3-chlorobutane
1-Bromo-1-chloro-1, 2, 2-trifluoroethane
1-Bromo-4-chlorobut-2-yne
2-(Trichloromethyl)-1,1,1,2,3,3,3-heptachloropropane
(v)
2-Bromo-3, 3-bis(4-chlorophenyl) butane
1-chloro-1-(4-iodophenyl)-3, 3-dimethylbut-1-ene
10.3 Write the structures of the following organic halogen compounds.
(i) 2-Chloro-3-methylpentane
(ii) $p$-Bromochlorobenzene
(iii) 1-Chloro-4-ethylcyclohexane
(iv) 2-(2-Chlorophenyl)-1-iodooctane
(v) 2-Bromobutane
(vi) 4-tert-Butyl-3-iodoheptane
(vii) 1-Bromo-4-sec-butyl-2-methylbenzene
(viii) 1,4-Dibromobut-2-ene
Show Answer
Answer
2-Chloro-3-methylpentane
(ii)
$p$-Bromochlorobenzene
1-Chloro-4-ethylcyclohexane
2-(2-Chlorophenyl)-1-iodooctane
4-Tert-Butyl-3-iodoheptane
(vii)
1-Bromo-4-sec-butyl-2-methylbenzene
(viii) $ \mathrm{Br}-\stackrel{1}{\mathrm{C}} \mathrm{H}_2-\stackrel{2}{\mathrm{C}} \mathrm{H}=\stackrel{3}{\mathrm{C}} \mathrm{H}-\stackrel{4}{\mathrm{C}} \mathrm{H}_2-\mathrm{Br} $
1,4-Dibromobut-2-ene
10.4 Which one of the following has the highest dipole moment?
(i) $\mathrm{CH_2} \mathrm{Cl_2}$
(ii) $\mathrm{CHCl_3}$
(iii) $\mathrm{CCl_4}$
Show Answer
Answer
Dichlormethane $(\mathrm{CH_2Cl_2})$
Dipole movement = 1.60D
Chloroform $(\mathrm{CHCl_2})$
Dipole movement = 1.08D
Carbon tetrachloride $\mathrm{(CCl_4)}$
Dipole movement = 0D
10.5 A hydrocarbon $\mathrm{C_5} \mathrm{H_{10}}$ does not react with chlorine in dark but gives a single monochloro compound $\mathrm{C_5} \mathrm{H_9} \mathrm{Cl}$ in bright sunlight. Identify the hydrocarbon.
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Answer
A hydrocarbon with the molecular formula, $\mathrm{C_5} \mathrm{H_10}$ belongs to the group with a general molecular formula $\mathrm{C_n} \mathrm{H_2 n}$. Therefore, it may either be an alkene or a cycloalkane.
Since hydrocarbon does not react with chlorine in the dark, it cannot be an alkene. Thus, it should be a cycloalkane.
Further, the hydrocarbon gives a single monochloro compound, $\mathrm{C_5} \mathrm{H_9} \mathrm{Cl}$ by reacting with chlorine in bright sunlight. Since a single monochloro compound is formed, the hydrocarbon must contain $\mathrm{H}$-atoms that are all equivalent. Also, as all $\mathrm{H}$-atoms of a cycloalkane are equivalent, the hydrocarbon must be a cycloalkane. Hence, the said compound is cyclopentane.
Cyclopentane $\left(\mathrm{C_5} \mathrm{H_10}\right)$
The reactions involved in the question are:
10.6 Write the isomers of the compound having formula $\mathrm{C_4} \mathrm{H_9} \mathrm{Br}$.
Show Answer
Answer
There are four isomers of the compound having the formula $\mathrm{C_4} \mathrm{H_9} \mathrm{Br}$. These isomers are given below.
10.7 Write the equations for the preparation of 1-iodobutane from
(i) 1-butanol (ii) 1-chlorobutane (iii) but-1-ene.
Show Answer
Answer
(i)
10.8 What are ambident nucleophiles? Explain with an example.
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Answer
Ambident nucleophiles are nucleophiles having two nucleophilic sites. Thus, ambident nucleophiles have two sites through which they can attack.
For example, nitrite ion is an ambident nucleophile.
$ [ ^-{\mathrm{O}}-\ddot{\mathrm{N}}=\mathrm{o}] $
Nitrite ion can attack through oxygen resulting in the formation of alkyl nitrites. Also, it can attack through nitrogen resulting in the formation of nitroalkanes.
10.9 Which compound in each of the following pairs will react faster in $\mathrm{S_\mathrm{N}} 2$ reaction with ${ }^{-} \mathrm{OH}$ ?
(i) $\mathrm{CH_3} \mathrm{Br}$ or $\mathrm{CH_3} \mathrm{I}$
(ii) $\left(\mathrm{CH_3}\right)_{3} \mathrm{CCl}$ or $\mathrm{CH_3} \mathrm{Cl}$
Show Answer
Answer
(i) In the $\mathrm{S_\mathrm{N}} 2$ mechanism, the reactivity of halides for the same alkyl group increases in the order. This happens because as the size increases, the halide ion becomes a better leaving group.
$\mathrm{R}-\mathrm{F} < < \mathrm{R}-\mathrm{Cl}<\mathrm{R}-\mathrm{Br}<\mathrm{R}-\mathrm{I}$
Therefore, $\mathrm{CH_3}$ l will react faster than $\mathrm{CH_3} \mathrm{Br}$ in $\mathrm{S_\mathrm{N}} 2$ reactions with $\mathrm{OH}$.
The $\mathrm{S _\mathrm{N}} 2$ mechanism involves the attack of the nucleophile at the atom bearing the leaving group. But, in case of $\left(\mathrm{CH _3}\right) _{3} \mathrm{CCl}$, the attack of the nucleophile at the carbon atom is hindered because of the presence of bulky substituents on that carbon atom bearing the leaving group. On the other hand, there are no bulky substituents on the carbon atom bearing the leaving group in $\mathrm{CH _3} \mathrm{Cl}$. Hence, $\mathrm{CH _3} \mathrm{Cl}$ reacts faster than $\left(\mathrm{CH _3}\right) _{3} \mathrm{CCl}$ in $\mathrm{S _\mathrm{N}} 2$ reaction with $\mathrm{OH}$.
10.10 Predict all the alkenes that would be formed by dehydrohalogenation of the following halides with sodium ethoxide in ethanol and identify the major alkene:
(i) 1-Bromo-1-methylcyclohexane
(ii) 2-Chloro-2-methylbutane
(iii) 2,2,3-Trimethyl-3-bromopentane.
Show Answer
Answer
(i) In the given compound, there are two types of $\alpha-$-hydrogen atoms are present. Thus, dehydrohalogenation of this compound gives two alkenes.
(ii) In the given compound, there are two different sets of equivalent $\alpha-$hydrogen atoms labelled as $a$ and $b$. Thus, dehydrohalogenation of the compound yields two alkenes.
Saytzeff’s rule implies that in dehydrohalogenation reactions, the alkene having a greater number of alkyl groups attached to a doubly bonded carbon atoms is preferably produced.
Therefore, alkene (I) i.e., 2-methylbut-2-ene is the major product in this reaction.
(iii) 2,2,3-Trimethyl-3-bromopentane
In the given compound, there are two different sets of equivalent $\alpha-$hydrogen atoms labelled as $a$ and $b$. Thus, dehydrohalogenation of the compound yields two alkenes.
According to Saytzeff’s rule, in dehydrohalogenation reactions, the alkene having a greater number of alkyl groups attached to the doubly bonded carbon atom is preferably formed.
Hence, alkene (I) i.e., 3,4,4-trimethylpent-2-ene is the major product in this reaction.
10.11 How will you bring about the following conversions?
(i) Ethanol to but-1-yne
(ii) Ethane to bromoethene
(iii) Propene to 1-nitropropane
(iv) Toluene to benzyl alcohol
(v) Propene to propyne
(vi) Ethanol to ethyl fluoride
(vii) Bromomethane to propanone
(viii) But-1-ene to but-2-ene
(ix) 1-Chlorobutane to n-octane
(x) Benzene to biphenyl.
Show Answer
Answer
(i)
$\underset{\text{Ethanol}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{OH}} \xrightarrow{\text { SOCl, Pyridine }} \underset{\text{Chloroethane}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{Cl}}+\mathrm{SO_2}+\mathrm{HCl}$
$\underset{\text{Ethyne}}{\mathrm{HC} \equiv \mathrm{CH}}+\mathrm{NaNH_2} \xrightarrow{\mathrm{Liq} \mathrm{NH_3}} \underset{\text{Sodiumacetylide}}{\mathrm{HC} \equiv \stackrel{-}{\mathrm{C}} \stackrel{+}{\mathrm{Na}}}$
$\underset{\text{Chloroethane}}{\mathrm{CH_3} \mathrm{CH_2}-\mathrm{Cl}+\mathrm{HC} \equiv \stackrel{-}{\mathrm{C}} \stackrel{+}{\mathrm{N}} \mathrm{a}} \longrightarrow \underset{\text{But-1-yne}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{C} \equiv \mathrm{CH}+\mathrm{NaCl}}$
(ii)
(iii)
(iv)
(v)
(vi)
(vii)
(viii)
(ix)
$\underset{\text{1-Chlordrutane}}{2 \mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2-\mathrm{Cl}+2 \mathrm{Na} }\xrightarrow[-2 \mathrm{NaCl}]{\text { dry }} \underset{\text{n-Octane}}{\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{CH}_3}$
10.12 Explain why
(i) the dipole moment of chlorobenzene is lower than that of cyclohexyl chloride?
(ii) alkyl halides, though polar, are immiscible with water?
(iii) Grignard reagents should be prepared under anhydrous conditions?
Show Answer
Answer
(i)
In chlorobenzene, the $\mathrm{Cl}$-atom is linked to a $s p^{2}$ hybridized carbon atom. In cyclohexyl chloride, the $\mathrm{Cl}$-atom is linked to $a s p^{3}$ hybridized carbon atom. Now, $s p^{2}$ hybridized carbon has more s-character than $s p^{3}$ hybridized carbon atom. Therefore, the former is more electronegative than the latter. Therefore, the density of electrons of $\mathrm{C}-\mathrm{Cl}$ bond near the $\mathrm{Cl}$-atom is less in chlorobenzene than in cydohexyl chloride.
Moreover, the - $\mathrm{R}$ effect of the benzene ring of chlorobenzene decreases the electron density of the $\mathrm{C}-\mathrm{Cl}$ bond near the $\mathrm{Cl}$-atom. As a result, the polarity of the $\mathrm{C}-\mathrm{Cl}$ bond in chlorobenzene decreases. Hence, the dipole moment of chlorobenzene is lower than that of cyclohexyl chloride.
(ii) To be miscible with water, the solute-water force of attraction must be stronger than the solute-solute and waterwater forces of attraction. Alkyl halides are polar molecules and so held together by dipole-dipole interactions. Similarly, strong $\mathrm{H}$-bonds exist between the water molecules. The new force of attraction between the alkyl halides and water molecules is weaker than the alkyl halide-alkyl halide and water-water forces of attraction. Hence, alkyl halides (though polar) are immiscible with water.
(iii) Grignard reagents are very reactive. In the presence of moisture, they react to give alkanes.
$\underset{\text{Grigrard reagent}}{\stackrel{\delta-}{\mathrm{R}} \stackrel{\delta+}{\mathrm{Mg}} \stackrel{\delta-}{\mathrm{X}}}+\mathrm{H_2} \mathrm{O} \longrightarrow \underset{\text{Alkane}}{\mathrm{R}-\mathrm{H}}+\mathrm{Mg}(\mathrm{OH}) \mathrm{X}$
Therefore, Grignard reagents should be prepared under anhydrous conditions.
10.13 Give the uses of freon 12, DDT, carbon tetrachloride and iodoform.
Show Answer
Answer
Uses of Freon - 12
Freon-12 (dichlorodifluoromethane, $\mathrm{CF_2} \mathrm{Cl_2}$ ) is commonly known as CFC. It is used as a refrigerant in refrigerators and air conditioners. It is also used in aerosol spray propellants such as body sprays, hair sprays, etc. However, it damages the ozone layer. Hence, its manufacture was banned in the United States and many other countries in 1994.
Uses of DDT
DDT ( $p$, $p$-dichlorodiphenyltrichloroethane) is one of the best known insecticides. It is very effective against mosquitoes and lice. But due its harmful effects, it was banned in the United States in 1973.
Uses of carbontetrachloride $\left(\mathrm{CCl_4}\right)$
(i) It is used for manufacturing refrigerants and propellants for aerosol cans. (ii) It is used as feedstock in the synthesis of chlorofluorocarbons and other chemicals.
(iii) It is used as a solvent in the manufacture of pharmaceutical products.
(iv) Until the mid 1960’s, carbon tetrachloride was widely used as a cleaning fluid, a degreasing agent in industries, a spot reamer in homes, and a fire extinguisher.
Uses of iodoform $\left(\mathrm{CH_3}\right)$
lodoform was used earlier as an antiseptic, but now it has been replaced by other formulations-containing iodine-due to its objectionable smell. The antiseptic property of iodoform is only due to the liberation of free iodine when it comes in contact with the skin.
10.14 Write the structure of the major organic product in each of the following reactions:
(i) $ \mathrm{CH_3} \mathrm{CH_2}\mathrm{CH_2}\mathrm{Cl} + \mathrm{NaI} \xrightarrow[{heat}]{acetone} $
(ii) $ (\mathrm{CH_3})_3\mathrm{CBr} + \mathrm{KOH} \xrightarrow[{heat}]{ethanol} $
(iii) $\mathrm{CH_3} \mathrm{CH}(\mathrm{Br}) \mathrm{CH_2} \mathrm{CH_3}+\mathrm{NaOH} \xrightarrow {\text { water }}$
(iv) $\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{Br}+\mathrm{KCN} \xrightarrow{\text { aq. ethanol }}$
(v) $\mathrm{C_6} \mathrm{H_5} \mathrm{ONa}+\mathrm{C_2} \mathrm{H_5} \mathrm{Cl} \longrightarrow$
(vi) $\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{OH}+\mathrm{SOCl_2}\longrightarrow$
(vii) $\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH}=\mathrm{CH_2}+\mathrm{HBr} \xrightarrow{\text { peroxide }}$
(viii) $\mathrm{CH_3} \mathrm{CH}=\mathrm{C}\left(\mathrm{CH_3}\right)_{2}+\mathrm{HBr}\longrightarrow$
Show Answer
Answer
(i) $ \underset{\text{1-Chloropropane}}{\mathrm{CH_3} \mathrm{CH_2}\mathrm{CH_2}\mathrm{Cl} + \mathrm{NaI}} \xrightarrow[{\text{heat}}]{\text{acetone}} \underset{\text{1-Iodopropane}}{\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{CH}_2 \mathrm{I}+\mathrm{NaCl}} $
Finkelstein reaction
(ii) $ \underset{\text{2-Bromo-2-methylpropane}}{(\mathrm{CH_3})_3\mathrm{CBr}} + \mathrm{KOH} \underset{\text{Dehydrogenation}}{\xrightarrow[{\text{heat}}]{\text{ethanol}}} \underset{\text{2-Methylpropene}}{\mathrm{CH_3-\underset{\substack{ | \\ \mathrm{CH_3}}}{C}=CH_3 + KBr +H_2O}} $
(iii) $\underset{\text{2-Bromobutane}}{\mathrm{CH_3} \mathrm{CH}(\mathrm{Br}) \mathrm{CH_2} \mathrm{CH_3}+\mathrm{NaOH}} \xrightarrow{\text { water }} \underset{\text{Butan-2-ol}}{\mathrm{CH_3} \mathrm{CH}(\mathrm{OH}) \mathrm{CH_2} \mathrm{CH_3}+\mathrm{NaBr}}$
(iv) $ \underset{\text{Bromobutane}}{\mathrm{CH}_3 \mathrm{CH}_2 \mathrm{Br}}+\mathrm{KCN} \xrightarrow[{\left(\substack{\text{Nucleophilic} \\ \text{substitution}}\right)}]{\text { aq. ethanol }} \mathrm{CH_3CH_2CN + KBr}$
(v) $\underset{\text{Sodium phenoxide}}{\mathrm{C_6} \mathrm{H_5} \mathrm{ONa}}+ \underset{\text{Chloroethane}}{\mathrm{C_2} \mathrm{H_5} \mathrm{Cl}} \xrightarrow[{\left(\substack{\text{Williamson} \\ \text{sysnthesis}}\right)}]{} \underset{\text{Phenetole}}{\mathrm{C_6} \mathrm{H_5}-\mathrm{O}-\mathrm{C_2} \mathrm{H_5}}+\mathrm{NaCl}$
(vi) $\underset{\text{1-Propanol}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{OH}}+\mathrm{SOCl_2}\longrightarrow \underset{\text{1-Chloropropane}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{Cl}}+\mathrm{SO_2}+\mathrm{HCl}$
(vii) $\underset{\text{But-1-ene}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH}=\mathrm{CH_2}}+\mathrm{HBr} \underset{\left(\substack{ \text{Anti-Markkovnikov’s}\\ \text{addition}}\right)}{\xrightarrow{\text { peroxide }}} \underset{\text{1-Bromobutane}}{\mathrm{CH_3} \mathrm{CH_2} \mathrm{CH_2} \mathrm{CH_2}-\mathrm{Br}}$
(viii) $\underset{\text{2-Methylbut-2-ene}}{\mathrm{CH_3} \mathrm{CH}=\mathrm{C}\left(\mathrm{CH_3}\right)_{2}}+\mathrm{HBr} \xrightarrow[{\left(\substack{ \text{Anti-Markkovnikov’s}\\ \text{addition}}\right)}]{} \mathrm{CH_3-CH_2 \stackrel{\substack{\mathrm{Br}\\ |}}{\underset{\substack{| \\ \mathrm{CH_3}}}{C}} CH_3}$
10.15 Write the mechanism of the following reaction: $\mathrm{nBuBr}+\mathrm{KCN} \xrightarrow{\mathrm{EtOH}-\mathrm{H_2} \mathrm{O}} \mathrm{nBuCN}$
Show Answer
Answer
The given reaction is:
$\mathrm{nBuBr}+\mathrm{KCN} \xrightarrow{\mathrm{EtOH}-\mathrm{H_2} \mathrm{O}} \mathrm{nBuCN}$
The given reaction is an $\mathrm{S_\mathrm{N}} 2$ reaction. In this reaction, $\mathrm{CN}$ - acts as the nucleophile and attacks the carbon atom to which $\mathrm{Br}$ is attached. $\mathrm{CN}$ ion is an ambident nucleophile and can attack through both $\mathrm{C}$ and $\mathrm{N}$. In this case, it attacks through the $\mathrm{C}$-atom.
10.16 Arrange the compounds of each set in order of reactivity towards $\mathrm{S_\mathrm{N}} 2$ displacement:
(i) 2-Bromo-2-methylbutane, 1-Bromopentane, 2-Bromopentane
(ii) 1-Bromo-3-methylbutane, 2-Bromo-2-methylbutane, 2-Bromo-3-methylbutane
(iii) 1-Bromobutane, 1-Bromo-2,2-dimethylpropane, 1-Bromo-2-methylbutane, 1-Bromo-3-methylbutane.
Show Answer
Answer
(i)
An $S_{N} 2$ reaction involves the approaching of the nucleophile to the carbon atom to which the leaving group is attached. When the nucleophile is sterically hindered, then the reactivity towards $S_{N} 2$ displacement decreases. Due to the presence of substituents, hindrance to the approaching nucleophile increases in the following order.
1-Bromopentane < 2-bromopentane $<2$-Bromo-2-methylbutane
Hence, the increasing order of reactivity towards $S_{N}{ }^{2}$ displacement is:
2-Bromo-2-methylbutane < 2-Bromopentane $<1$-Bromopentane
(ii)
Since steric hindrance in alkyl halides increases in the order of $1^{\circ}<2^{\circ}<3^{\circ}$, the increasing order of reactivity towards $\mathrm{S_\mathrm{N}} 2$ displacement is
$3^{\circ}<2^{\circ}<1^{\circ}$.
Hence, the given set of compounds can be arranged in the increasing order of their reactivity towards $\mathrm{S_\mathrm{N}}{ }^{2}$ displacement as:
2-Bromo-2-methylbutane < 2-Bromo-3-methylbutane < 1-Bromo-3-methylbutane
[2-Bromo-3-methylbutane is incorrectly given in NCERT]
(iii)
The steric hindrance to the nucleophile in the $\mathrm{S_\mathrm{N}} 2$ mechanism increases with a decrease in the distance of the substituents from the atom containing the leaving group. Further, the steric hindrance increases with an increase in the number of substituents. Therefore, the increasing order of steric hindrances in the given compounds is as below:
1-Bromobutane < 1-Bromo-3-methylbutane < 1-Bromo-2-methylbutane
< 1-Bromo-2, 2-dimethylpropane
Hence, the increasing order of reactivity of the given compounds towards $\mathrm{S_\mathrm{N}} 2$ displacement is:
1-Bromo-2, 2-dimethylpropane < 1-Bromo-2-methylbutane $<$ 1-Bromo-3- methylbutane $<1$-Bromobutane
10.17 Out of $\mathrm{C_6} \mathrm{H_5} \mathrm{CH_2} \mathrm{Cl}$ and $\mathrm{C_6} \mathrm{H_5} \mathrm{CHClC_6} \mathrm{H_5}$, which is more easily hydrolysed by aqueous $\mathrm{KOH}$.
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Answer
Hydrolysis by aqueous $\mathrm{KOH}$ proceeds through the formation of carbocation. If carbocation is stable, then the compound is easily hydrolyzed by aqueous $\mathrm{KOH}$. Now, forms $1^{\circ}$-carbocation, while forms $2^{\circ}$-carbocation, which is more stable than $1^{\circ}$-carbocation. Hence, is hydrolyzed more easily than by aqueous $\mathrm{KOH}$.
10.18 $p$-Dichlorobenzene has higher m.p. than those of $o-$ and $m$-isomers. Discuss.
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Answer
$p$-Dichlorobenzene is more symmetrical than $o$-and $m$-isomers. For this reason, it fits more closely than $o$-and $m$ isomers in the crystal lattice. Therefore, more energy is required to break the crystal lattice of $p$-dichlorobenzene. As a result, $p$-dichlorobenzene has a higher melting point and lower solubility than $o$-and $m$-isomers.
10.19 How the following conversions can be carried out?
(i) Propene to propan-1-ol
(ii) Ethanol to but-1-yne
(iii) 1-Bromopropane to 2-bromopropane
(iv) Toluene to benzyl alcohol
(v) Benzene to 4-bromonitrobenzene
(vi) Benzyl alcohol to 2-phenylethanoic acid
(vii) Ethanol to propanenitrile
(viii) Aniline to chlorobenzene
(ix) 2-Chlorobutane to 3, 4-dimethylhexane
(x) 2-Methyl-1-propene to 2-chloro-2-methylpropane
(xi) Ethyl chloride to propanoic acid
(xii) But-1-ene to n-butyliodide
(xiii) 2-Chloropropane to 1-propanol
(xiv) Isopropyl alcohol to iodoform
(xv) Chlorobenzene to $p$-nitrophenol
(xvi) 2-Bromopropane to 1-bromopropane
(xvii) Chloroethane to butane
(xviii) Benzene to diphenyl
(xix) tert-Butyl bromide to isobutyl bromide
(xx) Aniline to phenylisocyanide
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Answer
(i)
(ii)
(iii)
(iv)
(v)
(vi)
(vii)
$ \underset{\text{Ethanol}}{\mathrm{CH}_3-\mathrm{CH}_2-\mathrm{OH}} \xrightarrow{\text { red } \mathrm{P} / \mathrm{Br}_2} \underset{\text{Bromoethane}}{\mathrm{CH}_3-\mathrm{CH}_2-\mathrm{Br}} \xrightarrow{\mathrm{KCN}, \text { Aq. ethanol }} \underset{\text{Propanenitrile}}{\mathrm{CH}_3-\mathrm{CH}_2-\mathrm{CN}} $
(viii)
(ix)
(x)
(xi)
(xii)
(xiii)
(xiv)
(xv)
(xvi)
(xvii)
$\underset{\substack{\text { Chloroethane }}}{\mathrm{CH}_3-\mathrm{CH}_2-\mathrm{Cl}} \quad \underset{\text { (Wurtz reaction) }}{\stackrel{2 \mathrm{Na} / \text { dry ether }}{\xrightarrow{\hspace{2 cm}}}} \quad \mathrm{CH}_3-\mathrm{CH}_2-\mathrm{CH}_2-\mathrm{CH}_3+2 \mathrm{NaCl}$
(xviii)
(xix)
(xx)
10.20 The treatment of alkyl chlorides with aqueous $\mathrm{KOH}$ leads to the formation of alcohols but in the presence of alcoholic $\mathrm{KOH}$, alkenes are major products. Explain.
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Answer
In an aqueous solution, $\mathrm{KOH}$ almost completely ionizes to give $\mathrm{OH}^{-}$ions. $\mathrm{OH}^{-}$ion is a strong nucleophile, which leads the alkyl chloride to undergo a substitution reaction to form alcohol.
$\underset{\text{Alkyl chloride}}{\mathrm{R}-\mathrm{Cl}+\mathrm{KOH_{(a q)}}} \longrightarrow \underset{\text{Alcohol}}{\mathrm{R}-\mathrm{OH}+\mathrm{KCl}}$
On the other hand, an alcoholic solution of $\mathrm{KOH}$ contains alkoxide $\left(\mathrm{RO}^{-}\right)$ion, which is a strong base. Thus, it can abstract a hydrogen from the $\beta- $ carbon of the alkyl chloride and form an alkene by eliminating a molecule of $\mathrm{HCl}$.
$$ \underset{\text{Alkyl chloride}}{\mathrm{R}-\mathrm{\underset{\beta}{C}H_2}-\mathrm{\underset{\alpha}{C}H_2}-\mathrm{Cl}+\mathrm{KOH}(\text { alc })} \longrightarrow \underset{\text{Alkene}}{\mathrm{R}-\mathrm{CH}=\mathrm{CH_2}+\mathrm{KCl}+\mathrm{H_2} \mathrm{O}} $$
$\mathrm{OH}^{-}$ion is a much weaker base than $\mathrm{RO}^{-}$ion. Also, $\mathrm{OH}^{-}$ion is highly solvated in an aqueous solution and as a result, the basic character of $\mathrm{OH}^{-}$ion decreases. Therefore, it cannot abstract a hydrogen from the $\tilde{\mathrm{A}} \mathrm{Z_\mathrm{A}} \mathrm{A}^{2}$-carbon.
10.21 Primary alkyl halide $\mathrm{C_4} \mathrm{H_9} \mathrm{Br}$ (a) reacted with alcoholic $\mathrm{KOH}$ to give compound (b). Compound (b) is reacted with HBr to give (c) which is an isomer of (a). When (a) is reacted with sodium metal it gives compound (d), $\mathrm{C_8} \mathrm{H_18}$ which is different from the compound formed when n-butyl bromide is reacted with sodium. Give the structural formula of (a) and write the equations for all the reactions.
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Answer
There are two primary alkyl halides having the formula, $\mathrm{C_4} \mathrm{H_9} \mathrm{Br}$. They are $n$ - bulyl bromide and isobutyl bromide.
Therefore, compound (a) is either $n$-butyl bromide or isobutyl bromide.
Now, compound (a) reacts with $\mathrm{Na}$ metal to give compound (b) of molecular formula, $\mathrm{C_8} \mathrm{H_18}$, which is different from the compound formed when $n$-butyl bromide reacts with Na metal. Hence, compound (a) must be isobutyl bromide.
Thus, compound (d) is 2, 5-dimethylhexane.
It is given that compound (a) reacts with alcoholic $\mathrm{KOH}$ to give compound (b). Hence, compound (b) is 2-methylpropene.
Also, compound (b) reacts with $\mathrm{HBr}$ to give compound (c) which is an isomer of (a). Hence, compound (c) is 2-bromo2-methylpropane.
10.22 What happens when
(i) n-butyl chloride is treated with alcoholic $\mathrm{KOH}$,
(ii) bromobenzene is treated with $\mathrm{Mg}$ in the presence of dry ether,
(iii) chlorobenzene is subjected to hydrolysis,
(iv) ethyl chloride is treated with aqueous $\mathrm{KOH}$,
(v) methyl bromide is treated with sodium in the presence of dry ether,
(vi) methyl chloride is treated with $\mathrm{KCN}$ ?
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Answer
(i) When $\mathrm{n}$ - butyl chloride is treated with alcoholic $\mathrm{KOH}$, the formation of but - I - ene takes place. This reaction is a dehydrohalogenation reaction.
$\underset{n -\text{Butyl chloride}}{\mathrm{CH_3}-\mathrm{CH_2}-\mathrm{CH_2}-\mathrm{CH_2}-\mathrm{Cl}} \xrightarrow[\text { (Dehydrohalogenation) }]{\mathrm{KOH}(\text { alc } )/ \Delta} \underset{\text{But-1-ene}}{\mathrm{CH_3}-\mathrm{CH_2}-\mathrm{CH}=\mathrm{CH_2}}+\mathrm{KCl}+\mathrm{H_2} \mathrm{O}$
(ii) When bromobenzene is treated with $\mathrm{Mg}$ in the presence of dry ether, phenylmagnesium bromide is formed.
(iii) Chlorobenzene does not undergo hydrolysis under normal conditions. However, it undergoes hydrolysis when heated in an aqueous sodium hydroxide solution at a temperature of $623 \mathrm{~K}$ and a pressure of $300 \mathrm{~atm}$ to form phenol.
(iv) When ethyl chloride is treated with aqueous $\mathrm{KOH}$, it undergoes hydrolysis to form ethanol.
$\underset{\text{Ethyl chloride}}{\mathrm{CH_3}-\mathrm{CH_2}-\mathrm{Cl}} \xrightarrow[\text { (Hydrolysis) }]{\left.\mathrm{KOH_(\text {(i) }}\right)} \underset{\text{Ethanol}}{\mathrm{CH_3}-\mathrm{CH_2}-\mathrm{OH}}+\mathrm{KCl}$
(v) When methyl bromide is treated with sodium in the presence of dry ether, ethane is formed. This reaction is known as the Wurtz reaction.
$ \underset{\text{Methyl bromide}}{2 \mathrm{CH_3}-\mathrm{Br}}+2 \mathrm{Na} \xrightarrow[\text { (Wurtz reaction) }]{\text { Dry ether }} \underset{\text{Ethane}}{\mathrm{CH_3}-\mathrm{CH_3}}+2 \mathrm{NaBr} $
Ethane
(vi) When methyl chloride is treated with $\mathrm{KCN}$, it undergoes a substitution reaction to give methyl cyanide.
$ \underset{\text{Methyl chloride}}{\mathrm{CH_3}-\mathrm{Cl}}+\mathrm{KCN} \xrightarrow[\text { Nucloophilic substitution }]{ } \underset{\text{Methyl cyanide}}{\mathrm{CH_3}-\mathrm{CN}}+\mathrm{KCl} $