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
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
D.
- 46.32 kJ mol-1
ΔGΘ = -nF E
= – 2 × 96500 × 0.24 J mol–1
= -46320 J mol-1
= -46.32 kJ mol-1