If `NaCI` is droped with `10^(-4) "mole"% of SrCI_(2)` then number of cationic vacancies will beA. `6.02 xx 10^(16) mol^(-1)`B. `6.02 xx 10^(17) mol^(-1)`C. `6.02 xx 10^(14) mol^(-1)`D. `6.02 xx 10^(15) mol^(-1)`

If `NaCI` is droped with `10^(-4) "mole"% of SrCI_(2)` then number of

1.	If `NaCI` is droped with `10^(-4) "mole"% of SrCI_(2)` then number of cationic vacancies will beA. `6.02 xx 10^(16) mol^(-1)`B. `6.02 xx 10^(17) mol^(-1)`C. `6.02 xx 10^(14) mol^(-1)`D. `6.02 xx 10^(15) mol^(-1)`
Answer» Correct Answer - b What `SrCI_(2)` doped with `NaCI` One `Sr^(2+)` replaces two `Na^(+)` ions and occupies a lattice point and produces one cation vacancy `100 mol NaCI `will have `10^(-4)` cation vacancy ` 1 mol = (10^(4))/(100) = 10^(6) mol` Number of cation vacancies `= 10^(-6) xx 6.02 xx 10^(23)` `= 6.02 xx 10^(17)` atoms

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If `NaCI` is droped with `10^(-4) "mole"% of SrCI_(2)` then number of cationic vacancies will beA. `6.02 xx 10^(16) mol^(-1)`B. `6.02 xx 10^(17) mol^(-1)`C. `6.02 xx 10^(14) mol^(-1)`D. `6.02 xx 10^(15) mol^(-1)`

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