Molten CuCl2 is electrolysed using platinum electrodes. The reaction occurring at anode is
2Cl- → Cl2 (g) + 2e-
Cl2(g) + 2e- → 2Cl
Cu2+ + 2e- → Cu (s)
Cu(s) → Cu2+ + 2e-
During the electrolysis of cryolite, aluminium and fluorine are formed in ...... molar ratio :
1:2
2:3
1:1
1:3
What is the reduction electrode potential (in volts) of copper electrode when [Cu2+] = 0.01 M is in a solution at 25°C?
(E° of Cu2+/ Cu electrode is + 0.34 V)
0.3991
0.2809
0.3105
0.3695
The product obtained at anode when 50% H2SO4 aqueous solution is electrolysed using platinum electrodes is :
H2SO3
H2S2O8
O2
H2
0.066 g of metal was deposited when a current of 2 ampere is passed through a metal ion solution for 100 seconds. What is the electrochemical equivalent (in gram coulomb-1) of the metal ?
3.3 × 10-6
3.3 × 10-4
0.033
3.3
B.
3.3 × 10-4
w = z.i.t
z =
=
= 3.3 × 10-4g/ coulomb
Therefore, the electrochemical equivalent of the metal is 3.3 × 10-4g/ coulomb.
When X amperes of current is passed through molten AlCl3 for 96.5 s, 0.09g of aluminium is deposited. What is the value of X?
10 ampere
20 ampere
30 ampere
40 ampere
In the extraction of sodium by Down's process, cathode and anode respectively are
copper and nickel
copper and chromium
nickel and chromium
iron and graphite
The standard reduction potentials of Zn2+| Zn, Cu2+| Cu and Ag+| Ag are respectively -0.76, 0.34 and 0.8 V. The following cells were constructed :
(1) Zn | Zn2+ || Cu2+ | Cu
(2) Zn | Zn2+ || Ag+ | Ag
(3) Cu | Cu2+ || Ag+ |Ag
What is the correct order of E of these cells?
2 > 3 > 1
2 > 1 > 3
1 > 2 > 3
3 > 1 > 2
What is the quantity of electricity (in Coulombs) required to deposit all the silver from 250 mL of 1 M AgNO3 solution?
2412.5
24125
4825.0
48250
Which of the following is not correct?
Aqueous solution of NaCl is an electrolyte
The units of electrochemical equivalent are g-Coulomb
It the Nernst equation, n represents the number of electrons transferred in the electrode reaction.
Standard reduction potential of hydrogen electrode is zero volt