Nuclear Chemistry - Result Question 9

####9. A plot of the number of neutrons (n) against the number of protons $(p)$ of stable nuclei exhibits upward deviation from linearity for atomic number, $Z>20$. For an unstable nucleus having $n / p$ ratio less than 1 , the possible mode(s) of decay is (are)

(2016 Adv.)

(a) $\beta^{-}$- decay $(\beta$ - emission)

(b) orbital or $K$-electron capture

(c) neutron emission

(d) $\beta^{+}$-decay (positron emission)

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Answer:

Correct Answer: 9. isotope

Solution:

  1. For the elements with atomic number $(Z)$ larger than 20 ,

Neutrons $(n)>$ Protons $(p)$; Thus, $n / p>1$

Thus, there is upward deviation from linearity.

If $n<p$, Thus $n / p<1$, then

(a) By $\beta^{-}$- decay, ${ } _0^{1} n \longrightarrow{ } _1^{1} p+{ } _{-1}^{0} e$ neutron changes to proton. Thus, $(n / p)$ ratio further decreases below 1 . Thus, this decay is not allowed.

(b) By orbital or $K$ - electron capture, ${ } _1^{1} p+{ } _{-1}^{0} e \longrightarrow{ } _0^{1} n$ proton changes to neutron, hence, $(n / p)$ ratio increases. Thus stability increases. Thus correct.

(c) Neutron emission further decreases $n / p$ ratio.

(d) By $\beta^{+}$-emission, ${ } _1^{1} p \longrightarrow{ } _0^{1} n+{ } _{+1}^{0} e$ proton changes to neutron. Hence, $n / p$ ratio increases. Thus correct.

Plot of the number of neutrons against the number of protons in stable nuclei (shown by dots).



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