When a lead storage battery is discharged, then:

1. SO2 is evolved.

2. Lead is formed.

3. Lead sulphate is consumed.

4. Sulphuric acid is consumed.

Subtopic:  Batteries & Salt Bridge |
 60%
Level 2: 60%+
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Each of the three metals X, Y and Z were put in turn into aqueous solution of the other two.

X + Salt of Y (or Z)   Y (or Z) + Salt of X.

Which observation is probably incorrect?

1. Y + Salt of X = No action observed

2. Y + Salt of Z = Z + Salt of Y

3. Z + Salt of X = X + Salt of Z

4. Z + Salt of Y = No action observed

Subtopic:  Electrochemical Series |
 60%
Level 2: 60%+
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When an electric current is passed through acidulated water, 112 mL of hydrogen gas at STP collects at the cathode in 965 second. The current passed, in ampere is:

1. 1.0

2. 0.5

3. 0.1

4. 2.0

Subtopic:  Faraday’s Law of Electrolysis |
 57%
Level 3: 35%-60%
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The change in reduction potential of a hydrogen electrode when its solution initialy at pH = 0 is neutralised to pH = 7, is a/an-

1. Increase by 0.059 V 2. Decrease by 0.059 V
3. Increase by 0.41 V 4. Decrease by 0.41 V
Subtopic:  Electrode & Electrode Potential | Nernst Equation |
 54%
Level 3: 35%-60%
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A depolariser used in dry cell batteries is: 

1. Ammonium chloride 

2. Manganese dioxide

3. Potassium hydroxide 

4. Sodium phosphate

Subtopic:  Batteries & Salt Bridge |
 53%
Level 3: 35%-60%
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The standard reduction potentials of Cu2+/Cu and Cu2+/Cu+ are 0.337 and 0.153V respectively. The standard electrode potential of Cu+/Cu half cell is:

1. 0.184V 

2. 0.827V

3. 0.521V

4. 0.490V

Subtopic:  Electrode & Electrode Potential |
Level 3: 35%-60%
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 The cell reaction for the given cell is spontaneous if:

Ptcl2|cl-(1M)||Cl-(1M)|PtCl2

1. P1 > P2 

2. P1 < P2

3. P1 = P2

4. P1 = 1 atm

Subtopic:  Electrode & Electrode Potential |
Level 3: 35%-60%
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The molar conductances of Ba2+ and Cl- 127 and 76Ω-1 cm-1 mol-1 respectively at infinite dilution. The equivalent conductance of BaCl2 at infinite dilution will be

1. 139.52

2. 203

3. 279

4. 101.5

Subtopic:   Kohlrausch Law & Cell Constant |
Level 3: 35%-60%
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The electric charge for electrode deposition of 1g equivalent of a substance is:

1. 1 ampere per second

2. 96,500 coulomb per second

3. 1 ampere for 1 hour

4. charge on 1 mole of electrons

Subtopic:  Faraday’s Law of Electrolysis |
Level 3: 35%-60%
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The ratio of masses of hydrogen and magnesium deposited by the same amount of electricity from H2SO4 and MgSO4 in aqueous solution are:

1. 1:8

2. 1:12

3. 1:16

4. None of the above

Subtopic:  Faraday’s Law of Electrolysis |
Level 4: Below 35%
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