If the SRP of nickel and chlorine electrodes are -0.25 V and + 1.36 V respectively . The EMF of the cell ` Ni//Ni^(2+) (0.01M)// // Cl^(-) (0.01M) // Cl_2` , Pt is - V

E^@ values of N^(2+), Ni and Cl_(2), Cl^(-) are respectively -0.25 V and +1.37 V . Calculate the EMF of the cell, Ni , Ni^(2+) (0.01M)"//"Cl^(-)(0.1M), Cl_(2),Pt .

E^(@) values of Ni^(2+) , Ni and Cl_(2), Cl^(-) are respectively -0.25V and +1.37V . Calculate the EMF of the cell Ni, Ni^(2+) (0.01M)//Cl^(-)(0.1M), Cl_(2) , pt. Potential of nickel electrode is given as,

E^@ values of Zn^(2+), Zn and Cu^(2+), Cu are respectively -0.76 V and + 0.34 . Calculate the EMF of the cell Zn//Zn^(2+) (0.1M)"//"Cu^(2+)(0.1 M)//Cu .

E^(@) values of Zn^(2+) , Zn and Cu^(2+) , Cu are respectively -0.76V and +0.34 V . Calculate the EMF of the cell Zn//Zn^(2+)(0.1)"//"Cu^(2+)(0.1)//Cu .

Calculate the EMF of cell Ni//Ni^(2+) (0.01M)"//"Cl^(-)0.1M//Cl_(2) , Pt E^(@)Ni^(2+)//Ni= -0.250V : E^(@)Cl_(2)//Cl^(-)= +1.360V

The e.m.f of the cell, Ni//Ni^(2+)(1M)////Cl^(-)(1M)//Cl_(2),Pt is E^(@)Ni^(2+)//Ni= -0.25V,E^(@)1//2Cl_(2)//Cl^(-)=1.36V

E^(@) Values of the half cells Mg^(2+)//Mg and Cl_(2)//Cl^(-) are respectively -2.36V and +1.36 V. The E^(@) vlaue of the cell Mg//Mg^(2+)// // Cl_(2)//Cl^(-) is