$K B r$ is doped with $10^{- 5}$ mole percent of $S r B r_{2}$ . the number of cationic vacancies in $1 g$ of $K B r$ crystal is $10^{14}$ . (Round off the nearest integer). [Atomic mass: $K : 39.1 u, B r : 79.9 u, N_{A} = 6.023 \times 10^{23}$ ]
(JEE Main 2021)

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Solution

$1 S r^{2 +}$ replaces two $K^{+}$ , it occupies $1$ of the position and $1$ void is created. Number of vacancies in 1 mole of $K B r = \frac{10^{- 5}}{100} \times 6.023 \times 10^{23}$ Moles of KBr given $= \frac{1}{119}$ $∴$ Total vacancies in $1 g$ of $KBr = \frac{1}{119} \times \frac{1}{10^{7}} \times 6.023 \times 10^{23}$ $= 5.06 \times 10^{14}$ $= 5 \times 10^{14}$

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