Calculate equilibrium constant for the reaction
`Ni_((s))+ 2A_((aq))^(+) to Ni_((aq))^(+) + 2Ag` at` 25^(@)C`
`E_(Ni^(2+) | Ni)^(@) =- 0.25 ` V and `E_(Ag^(+) | Ag)^(@) = 0.799 V`

Write the cell representation and calculate equilibrium constant for the following redox reaction : Ni_((s))+2Ag_((aq))^(+)(1M) to Ni_((aq))^(2+)(1M) to 2Ag_((s)) at 25^(@)C E_(Ni)^_(Ni)^(2+)(@)=0*25V and E_(Ag)(+) ^(@)=0*799V

At 25^(@)C equilibrium constant for the reaction Ni_((s))+2Ag_((aq))^(+) too Ni_((aq))^(++)+2Ag_((s)) is 2 xx 10^(35) , then emf of the cell is

The equilibrium constant of the reaction : Zn(s)+2Ag^(+)(aq)toZn(aq)+2Ag(s),E^(@)=1.50V at 298 K is

Calculate the equilibrium constant of the reaction : Cu(s)+2Ag(aq) hArrCu^(2+)(aq) +2Ag(s) E^(c-)._(cell)=0.46V

The equilbrium constant for the reaction : Cu + 2 Ag^(+) (aq) rarr Cu(2+) (aq) +2 Ag, E^@ = 0. 46 V at 299 K is

Calculate equilibrium constant for the reaction at 25^(@)C Cu(s)+2Ag^(+)(aq) hArr Cu^(2+)(aq)+2Ag(s) E^(@) value of the cell is 0.46 " V " .

The equilibrium constant (K) for the reaction Cu(s)+2Ag^(+) (aq) rarr Cu^(2+) (aq)+2Ag(s) , will be [Given, E_(cell)^(@)=0.46 V ]