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Class 12 Chemistry
Chapter 2 Solutions — Electrochemistry
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Overview
Step-by-step NCERT solutions for Electrochemistry (Chapter 2, CBSE Class 12 Chemistry) — every question and answer worked out in full, not just the final result. You can also read the Electrochemistry textbook chapter.
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What these solutions cover
All 18 questions in Electrochemistry are solved in the PDF. Here's what's inside, exercise by exercise:
Exercises
- Arrange the following metals in the order in which they displace each other from the solution of their salts. Al, Cu, Fe, Mg and Zn.
- Given the standard electrode potentials, K⁺/K = -2.93 V, Ag⁺/Ag = 0.80 V, Hg²⁺/Hg = 0.79 V, Mg²⁺/Mg = -2.37 V, Cr³⁺/Cr = -0.74 V. Arrange these metals in their increasing order of reducing power.
- Depict the galvanic cell in which the reaction Zn(s) + 2Ag+(aq) -> Zn₂+(aq) + 2Ag(s) takes place. Further show:
- (i) Which of the electrode is negatively charged?
- (ii) The carriers of the current in the cell.
- (iii) Individual reaction at each electrode.
- Calculate the standard cell potentials of galvanic cell in which the following reactions take place:
- (i) 2Cr(s) + 3Cd₂+(aq) -> 2Cr₃+(aq) + 3Cd
- (ii) Fe₂+(aq) + Ag+(aq) -> Fe₃+(aq) + Ag(s). Calculate the DrG° and equilibrium constant of the reactions.
- Write the Nernst equation and emf of the following cells at 298 K:
- (i) Mg(s)|Mg₂+(0.001M)||Cu₂+(0.0001 M)|Cu(s)
- (ii) Fe(s)|Fe₂+(0.001M)||H+(1M)|H₂(g)(1bar)|Pt(s)
- (iii) Sn(s)|Sn₂+(0.050 M)||H+(0.020 M)|H₂(g)(1 bar)|Pt(s)
- (iv) Pt(s)|Br-(0.010 M)|Br₂(l)||H+(0.030 M)|H₂(g)(1 bar)|Pt(s).
- In the button cells 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 DrG° and E° for the reaction.
- Define conductivity and molar conductivity for the solution of an electrolyte. Discuss their variation with concentration.
- The conductivity of 0.20 M solution of KCl at 298 K is 0.0248 S cm-1. Calculate its molar conductivity.
- The resistance of a conductivity cell containing 0.001M KCl solution at 298 K is 1500 Ohm. What is the cell constant if conductivity of 0.001M KCl solution at 298 K is 0.146 × 10-3 S cm-1.
- The conductivity of sodium chloride at 298 K has been determined at different concentrations: Concentration/M: 0.001, 0.010, 0.020, 0.050, 0.100; 10² × k / S m-1: 1.237, 11.85, 23.15, 55.53, 106.74. Calculate Lm for all concentrations and draw a plot between Lm and c⁰.5. Find the value of Lm°.
- Conductivity of 0.00241 M acetic acid is 7.896 × 10-5 S cm-1. Calculate its molar conductivity. If Lm° for acetic acid is 390.5 S cm₂ mol-1, what is its dissociation constant?
- How much charge is required for the following reductions:
- (i) 1 mol of Al³⁺ to Al?
- (ii) 1 mol of Cu²⁺ to Cu?
- (iii) 1 mol of MnO₄⁻ to Mn₂+?
- How much electricity in terms of Faraday is required to produce
- (i) 20.0 g of Ca from molten CaCl₂?
- (ii) 40.0 g of Al from molten Al₂O₃?
- How much electricity is required in coulomb for the oxidation of
- (i) 1 mol of H₂O to O₂?
- (ii) 1 mol of FeO to Fe₂O₃?
- A solution of Ni(NO₃)₂ is electrolysed between platinum electrodes using a current of 5 amperes for 20 minutes. What mass of Ni is deposited at the cathode?
- Three electrolytic cells A, B, C containing solutions of ZnSO₄, AgNO₃ and CuSO₄, respectively are connected in series. A steady current of 1.5 amperes was passed through them until 1.45 g of silver deposited at the cathode of cell B. How long did the current flow? What mass of copper and zinc were deposited?
- Using the standard electrode potentials given in Table 2.1, predict if the reaction between the following is feasible:
- (i) Fe₃+(aq) and I-(aq)
- (ii) Ag+(aq) and Cu(s)
- (iii) Fe₃+(aq) and Br-(aq)
- (iv) Ag(s) and Fe₃+(aq)
- (v) Br₂(aq) and Fe₂+(aq).
- Predict the products of electrolysis in each of the following:
- (i) An aqueous solution of AgNO₃ with silver electrodes.
- (ii) An aqueous solution of AgNO₃ with platinum electrodes.
- (iii) A dilute solution of H₂SO₄ with platinum electrodes.
- (iv) An aqueous solution of CuCl₂ with platinum electrodes.
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