A certain metal salt solutions is electrolysed in series with a silver coulometer. The weights of silver and the metal deposited are 0.5094 g and 0.2653 g. Calculate the valency of the metal if its atomic weight is nearly that of silver.
(1) 1
(2) 2
(3) 3
(4) 4
The temperature coefficient, of the emf is = – 0.00065 volt. for the cell . Calculate the entropy change for the cell reaction,
The reduction potential of a half-cell consisting of a Pt electrode immersed in and solution at .
(1) 0.652 V
(2) 0.88 V
(3) 0.710 V
(4) 0.850 V
In a concentration cell, as the cell discharges,
(1) reaction proceeds to the right
(2) the two solutions approach each other in concentration
(3) no reaction takes place
(4) water gets decomposed
In a half-cell containing the cell potential is – 1.2496 V for the reaction The standard reduction potential of the couple at is
(1) 1.44 V
(2) 0.61 V
(3) 2.44 V
(4) 1.22 V
Given cell:
Pt(s)|H2(g)(P = 1 atm)| CH3COOH(0.1 M), HCl(0.1 M) || KCl(aq)|Hg2Cl2(s)|Hg
EMF of the cell is found to be 0.045 V at 298 K and the temperature coefficient is 3.4×10-4 V K-1. The cell entropy change of the following cell is :
[Given Ka CH3COOH = 10-5 M]
1. 70.8 J K−1 mol−1
2. 65.2 J K−1 mol−1
3. 79.2 J K−1 mol−1
4. 83.5 J K−1 mol−1
A dilute solution of was electrolysed by passing a current of 2 amp. The time required for formation of 0.5 mole of oxygen is
(1) 26.8 hours
(2) 13.4 hours
(3) 6.7 hours
(4) 28.6 hours
The standard reduction potentials for and couples in acid medium at are 1.50 V and 1.00 V respectively. The following reaction:
(1) reversible
(2) non-spontaneous
(3) spontaneous
(4) irreversible
In the following electrochemical cell, the standard reduction potentials are and Which one of the following statements is correct ?
1If a 100 mL solution of 0.1M HBr is titrated using a very concentrated solution of NaOH, when the conductivity (specific conductance) of the solution at the equivalence point will 3e (assume volume change is negligible due to addition of NaOH). Calculate your answer in terms of
(1) 6
(2) 12
(3) 15
(4) 24