From the following molar conductivities...

From the following molar conductivities at infinite dilution `:`
`wedge_(m)^(@)` for `Ba(OH)_(2)=457.6Omega^(1)cm^(2)mol^(-1)`
`wedge_(m)^(@)` for `BaCl_(2)=240.6Omega^(-1) cm^(2)mol^(-1)`
`wedge_(m)^(@)` for `NH_(4)Cl=129.8 Omega^(-1) cm^(2) mol^(-1)`
Calculate `wedge_(m)^(@)` for `NH_(4)OH`.

Text Solution

Verified by Experts

`wedge_(m[Ba(OH)_(2)])^(@)=lambda_(Ba^(2+))^(@)+2 lambda_(overset(c-)(O)H)^(@)=457.6 S cm^(2)mol^(-1)`
`wedge_(m(BaCl_(2)))^(@)=lambda_(Ba^(2+))^(@)+2 lambda_(Cl^(c-))^(@)=240.6 S cm^(2)mol^(-1)`
`wedge_(m(NH_(4)Cl))^(@)=lambda_(NH_(4)^(o+))^(@)+ lambda_(Cl^(c-))^(@)=129.8 S cm^(2)mol^(-1)`
`wedge_(m(NH_(4)OH))^(@)=wedge_(m(NH_(4)Cl))^(@)+(1)/(2)wedge_(m[Ba(OH)_(2)])^(@)-(1)/(2)wedge_(m(BaCl_(2)))^(@)`
`=129.8+(1)/(2)(457.6)-(1)/(2)(240.6)`
`=238.3S cm^(2)mol^(-1)`

Similar Questions

Explore conceptually related problems

wedge_(m)^(@) for NaCl,HCl , and NaAc are 126.4, 425.9, and 91.0 S cm^(2) mol^(-1) , respectively . Calculate wedge ^(@) for Hac.

Lambda_(m)^(@) for NH_(4)Cl, NaOH and NaCl are 130, 248 and 126.5 "ohm"^(-1)cm^(2)"mol"^(-1) respectively. The Lambda_(m)^(@) of NH_(4)OH will be,

The molar conductivity of acetic at infinite dilution is 390.7 and for 0.01 M acetic acid is 3.9.7 S cm^(2)mol^(-1). Calculate (a) alpha and (b) pH of solution.

Calculate wedge_(m)^(0)" for "CaCl_(2) and MgSO_(4) . lambda_(Ca^(2+))^(0)=119.0S cm^(2)" mol"^(-1) lambda_(Cl^(-))^(0)=76.3S cm^(2) mol^(-1) lambda_(Mg^(2+))^(0)=106 Scm^(2) mol^(-1) lambda_(SO_(4)^(2-))^(0)=160 Scm^(2) mol^(-1)

The ionic molar conductivities of C_(2)O_(4)^(2-),K^(o+) , and Na^(o+) ions are x^('),y^('), and z^(')S cm^(2) mol ^(-1) , respectively. Calculate wedge_(m)^(@) and wedge_(eq)^(@) of (NaOOC-COO) .

wedge^(@)._(m) for CaCl_(2) and MgSO_(4) from the given data. lambda_(Ca^(2+))^(@)=119.0S cm^(2)mol^(-1) ltbr. lambda_(Cl^(c-))^(@)=76.3S cm^(2)mol^(-1) lambda_(Mg^(2+))^(@)=106.0S cm^(2)mol^(-1) lambda_(SO_(4)^(2-))^(@)=160.0 cm^(2)mol^(-1)

The molar ionic conductances at infinite dilution of Mg^(2+) and Cl^(-) are 106.1 and 76.3 ohm^(-1) cm^(2)"mol"^(-1) respectively. The molar conductance of solution of MgCl_(2) at infinite dilution is :

The molar conductance at infinite dilution of aluminium sulphate is 858 "ohm"^(-1)"cm"^(2)"mol"^(-1) . Given the molar ionic conductance of sulphate ions as 160"ohm"^(-1)"cm"^(2)"mol"^(-1) , the molar ionic conductance of Al^(3+) ion is :

From the following molar conductivities at infinite dilution `:` `wedge_(m)^(@)` for `Ba(OH)_(2)=457.6Omega^(1)cm^(2)mol^(-1)` `wedge_(m)^(@)` for `BaCl_(2)=240.6Omega^(-1) cm^(2)mol^(-1)` `wedge_(m)^(@)` for `NH_(4)Cl=129.8 Omega^(-1) cm^(2) mol^(-1)` Calculate `wedge_(m)^(@)` for `NH_(4)OH`.

Text Solution

Similar Questions

Recommended Questions

From the following molar conductivities at infinite dilution `:`
`wedge_(m)^(@)` for `Ba(OH)_(2)=457.6Omega^(1)cm^(2)mol^(-1)`
`wedge_(m)^(@)` for `BaCl_(2)=240.6Omega^(-1) cm^(2)mol^(-1)`
`wedge_(m)^(@)` for `NH_(4)Cl=129.8 Omega^(-1) cm^(2) mol^(-1)`
Calculate `wedge_(m)^(@)` for `NH_(4)OH`.