A current of 12 ampere is passed through an electrolytic cell containing aqueous NiSO4 solution. Both Ni and H2 gas are formed at the cathode. The current efficiency is 60%. What is the mass of nickel deposited on the cathode per hour?
7.883g
3.941g
5.91g
2.645g
The cell reaction of a cell is If the standard reduction potentials of Mg and Cu are - 2.37 and + 0.34V respectively. The emf of the cell is
2.03V
-2.03V
+2.71V
-2.71V
In the electrochemical reaction, increasing the concentration of Fe2+
increases cell emf
increases the current flow
decrease the cell emf
alter the pH of the solution
When Cu reacts with AgNO3 solution, the reaction takes place is:
oxidation of Cu
reduction of Cu
oxidation of Ag
reduction of NO
A.
oxidation of Cu
Cu is placed above Ag in electrochemical series, hence it can replace Ag from its salts solution. Therefore the reaction occur as follows:
For a cell involving one electron E°cell = 0.59 V at 298 K, the equilibrium constant for the cell reaction is :[ Given that .
1.0 × 105
1.0 × 1010
1.0 × 1030
1.0 × 102
For the cell reaction
2Fe3+ (aq) +2l-(aq) → 2Fe2+(aq) + I2(aq)
E= 0.24V at 298 K. The standard Gibbs energy (ΔrGΘ) of the cell reaction is:
[Given that Faraday constant F = 96500 C mol–1]
– 23.16 kJ mol–1
46.32 kJ mol-1
23.16 kJ mol-1
- 46.32 kJ mol-1