If the molar conductance values of `Ca^(2+)` and `Cl^(-)` at infinite dilution are respectively `118.88xx10^(-4) m^(2)` mho `mol^(-1)` and `77.33xx10^
If the molar conductance values of `Ca^(2+)` and `Cl^(-)` at infinite dilution are respectively `118.88xx10^(-4) m^(2)` mho `mol^(-1)` and `77.33xx10^(-4) m^(2)` mho `mol^(-1)` then that of `CaCl_(2)` is :
(in `m^(2)` mho `mol^(-1)`)
A. `118.88xx10^(-4)`
B. `154.66xx10^(-4)`
C. `273.54xx10^(-4)`
D. `1 96.21xx10^(-4)`
4 views
1 Answers
Correct Answer - C
`^^_(m)^(@)(CaCl_(2))=lambda_(m)^(@)(Ca^(2+))+2lambda_(m)^(@)(Cl^(-))`
`=118.88xx10^(-4)+2(77+33xx10^(-4))`
`=273.54xx10^(-4)m^(2)"mol"^(-1)`
4 views
Answered