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 Multiple Choice QuestionsLong Answer Type

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141. Three electrolytic cells A, B and C containing solutions of ZnSO4(zinc sulphate), AgNO(silver nitrate) and CuSO4  (copper sulphate),  respectively are connected in series. A steady current of 1.5 ampere was passed through them until 1.45 g of silver is deposited at the cathode of cell B. How long did the current flow? What mass of copper and zinc were deposited? (Atomic masses: Ag = 108, Zn = 65.4, Cu = 63.5, all in amu). 
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 Multiple Choice QuestionsShort Answer Type

142. Calculate the standard cell potentials of galvanic cell in which the following reactions take place:
 2Cr(s) + 3Cd2+ (aq) → 2Cr3+ (aq) + 3Cd
(Calculate the ΔrG° and equilibrium constant of the reaction.)

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143. Calculate the standard cell potentials of galvanic cell in which the following reactions take place:
 Fe2+ (aq) + Ag+ (aq) → Fe3+(aq) + Ag(s)
Calculate the ΔrG° and equilibrium constant of the reaction.

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 Multiple Choice QuestionsLong Answer Type

144. In the button cell widely used in watches and other devices the following reaction takes place:
Zn(s) + Ag2O(s) + H2O(l) → Zn2+(aq) + 2Ag(s) + 2OH (aq)
Determine ΔrG° and E° for the reaction.

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 Multiple Choice QuestionsShort Answer Type

145. The resistance of a conductivity cell containing 0.001 M KCl solution at 298 K is 1500Ω. What is the cell constant if conductivity of 0.001 M KCl solution at 298 K is 0.146 x 10–3 s cm–1
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 Multiple Choice QuestionsLong Answer Type

146. Conductivity of 0.00241 M acetic acid solution is 7.896 x 10–5 S cm-1. Calculate its molar conductivity in this solution. If Λ°m for acetic acid be 390.5 S cm2 mol–1, what would be its dissociation constant?
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 Multiple Choice QuestionsShort Answer Type

147. Calculate the emf of the cell Zn/Zn2+ (0.1 M) || Cd2+ (0.01 M) | Cd at 298 k. (given)
Zn2+/Zn = – 0.76 V and E°Cd2+/Cd = – 0.40 V).

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 Multiple Choice QuestionsLong Answer Type

148.

Cu2+ + 2e → Cu E° = + 0.34 V
Ag+ + 1e → Ag E° = + 0.80 V
(i) Construct a galvanic cell using the above data.
(ii) For what concentration of Ag+ ions will the emf of the cell be zero at 25°C, if the concentration of Cu2+ is 0.01 M ? [log 3.919 = 0.593]

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149. Silver is electrodeposited on a metallic vessel of total surface area 900 cm2 by passing a current of 0.5 amp for two hours. Calculate the thickness of silver deposited. [Given : Density of silver = 10.5 g cm–3, Atomic mass of silver = 108 amu, F = 96,500 C mol–1]
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 Multiple Choice QuestionsShort Answer Type

150. Calculate the number of coulombs required for the oxidation of 1 mole of water to oxygen as per equation:
2H2O → 4H+ + O2 + 4e
[Given: 1 F = 96,500 C mol–1]
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