A zinc rod is placed in 0.095 M zinc chloride solution at `25^(@)C`. emf of this half cell is `-0.79V`. Calculate `E_(Zn^(2+)//Zn)^(@)`.

A half - cell is constructed by dipping a Zn- rod into a solution of ZnSO_(4) at 25^(@)C . If the concentration of Zn^(2+) ion in the solution be 0.01 (M), calculate the oxidation potential of the half- cell, Given : E_(Zn^(2+)|Zn)^(@)=-0.76V .

Zn(s)+2H^(+)(aq)rarr Zn^(2+)(0.1M)+H_(2)(g,"1 atm") Cell potential of a chemical cell in which the above reaction occurs is +0.28V at 25^(@)C . Write the half-cell reactions and calculate the pH of the hydrogen electrode. Give : E_("Zn^(2+)|Zn)^(@)=-0.76V and E_(2H^(+)|H_(2))^(@)=0.00V .

Zn(s)+2H^(+)(aq)rarr Zn^(2+)(0.1M)+H_(2)(g,"1 atm") Cell potential of a chemical cell in which the above reaction occurs is +0.28V at 25^(@)C . Write the half-cell reactions and calculate the pH of the hydrogen electrode. Give : E_("Zn^(2+)||Zn)^(@)=-0.76V and E_(2H^(+)||H)^(@)=0.00V

A Zn - electrode is dipped in a 0.1 (M) ZnSO_(4) solution. The salt in 95% dissociated in solution. Find the reduction potential of the electrode. Given : Temperature =298K, E_(Zn^(2+)|Zn)^(@)=-0.76V

When a cell is placed in 0.25 M concentrated suger solution, there is no change in it. The concentration of cell sap would be

Zn - granules are added in excess to 500 mL of 1.0 M nicke nitrate solution at 25^(@)C until the equilibrium is reached. If standard reduction potential of Zn^(2+)|Zn and Ni^(2+)|Ni are -0.75V and -0.24V , respectively, find out the concentration of Ni^(2+) in solution at equilibrium.

E^(0) of Cu is +0.34 V while that of Zn is -0.76V. Explain.

The standard reduction potential of a silver chloride electrode is 0.2V and that of silver electrode is 0.79V. Calculate the maximum amount of AgCl that can be dissolved in 10^(6) L of a 0.1 M AgNO_(3) solution.

For the half - cell Fe^(3+), Fe^(2+)|Pt , the concentration of Fe^(2+) and Fe^(3+) ions are 0.1 and 0.01 (M) respectively. Determine the reduction potential of the half - cell at 25^(@)C . Given : E_(Fe^(3+), Fe^(2+)|Pt)^(@)=+0.77V