Solutions Question 9

Question 9 - 2024 (30 Jan Shift 1)

The mass of sodium acetate $\left(CH _3 COONa\right)$ required to prepare $250 mL$ of $0.35 M$ aqueous solution is _________ g. (Molar mass of $CH _3 COONa$ is $82.02 g mol^{-1}$ )

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Answer (7)

Solution

Moles $=$ Molarity $\times$ Volume in litres

$=0.35 \times 0.25$

Mass $=$ moles $\times$ molar mass

$=0.35 \times 0.25 \times 82.02=7.18 g$

Ans. 7

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