03 Electrochemistry
Exercise
Question:
How much electricity in terms of Faraday is required to produce: (i) 20 g of Ca from molten CaCl2 (ii) 40 g of Al from molten Al2O3 [Given : Molar mass of calcium & Aluminium are 40 g mol-1 & 27 g mol-1 respectively]
Answer:
(i) 20 g of Ca from molten CaCl2
Step 1: Calculate the moles of Ca:
Moles of Ca = 20 g / 40 g mol-1
Moles of Ca = 0.5 mol
Step 2: Calculate the Faraday required:
Faraday required = 0.5 mol × 96,485 C mol-1
Faraday required = 48,243 C
(ii) 40 g of Al from molten Al2O3
Step 1: Calculate the moles of Al:
Moles of Al = 40 g / 27 g mol-1
Moles of Al = 1.48 mol
Step 2: Calculate the Faraday required:
Faraday required = 1.48 mol × 96,485 C mol-1
Faraday required = 143,854 C
Question:
The resistance of a conductivity cell containing 0.001M KCl solution at 298 K is 1500Ω. What is the cell constant if conductivity of 0.001M KCl solution at 298 K is 0.146×10-3S cm-1?
Answer:
Step 1: Calculate the specific conductance of 0.001M KCl solution at 298 K. Specific conductance = Conductivity/Concentration = 0.146×10-3S cm-1/0.001M = 146 S cm2/m
Step 2: Calculate the cell constant. Cell constant = Resistance/Specific conductance = 1500Ω/146 S cm2/m = 10.27 Ω-1cm2/m
Question:
Three electrolytic cells A,B,C containing solutions of ZnSO4,AgNO3 and CuSO3, 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?
Answer:
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Calculate the moles of silver deposited at the cathode of cell B: 1.45 g of AgNO3 = 1.45 g/169.87 g/mol = 0.0085 mol
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Calculate the total charge passed through the cells: 1.5 amperes x 1 hour = 1.5 Coulombs
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Calculate the time the current flowed: 1.5 Coulombs/0.0085 mol = 176.47 hours
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Calculate the mass of zinc deposited: 0.0085 mol of ZnSO4 x 65.38 g/mol = 0.55 g
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Calculate the mass of copper deposited: 0.0085 mol of CuSO3 x 159.61 g/mol = 1.35 g
Question:
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.
Answer:
Answer:
Depiction of Galvanic Cell:
(i) The electrode at which the reaction Zn(s)→Zn2+(aq) takes place is negatively charged.
(ii) The carriers of current in the cell are electrons.
(iii) Individual reactions at each electrode:
At the Anode (Negatively Charged Electrode): Zn(s)→Zn2+(aq) + 2e-
At the Cathode (Positively Charged Electrode): 2Ag+(aq) + 2e- → 2Ag(s)
Question:
The conductivity of sodium chloride at 298 K has been determined at different concentrations and the results are given below: Concentration/M 0.001 0.010 0.020 0.050 0.100 102k/Sm-1 1.237 11.85 23.15 55.53 106.74 Calculate ∧m for all concentrations and draw a plot between ∧m and c1/2. Find the value of ∧m0.
Answer:
Step 1: Calculate ∧m for all concentrations using the formula ∧m = √(c × 102k/Sm-1).
Step 2: Plot a graph between ∧m and c1/2.
Step 3: Calculate the value of ∧m0 by drawing a line of best fit through the graph and extrapolating to c1/2=0.
The value of ∧m0 can be calculated from the graph.
Question:
The conductivity of 0.20 M solution of KCl at 298 K is 0.0248 S cm-1. Calculate its molar conductivity.
Answer:
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Convert the given temperature from Kelvin to Celsius: 298 K = 25°C
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Calculate the molar concentration of KCl: 0.20 M
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Calculate the molar conductivity: 0.0248 S cm-1 x (1000 cm/m) x (1 mol/1000 mmol) = 0.248 mS cm2 mol^-1
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Calculate the molar conductivity: 0.248 mS cm2 mol^-1 x (1 mol/1000 mmol) = 0.000248 mS cm2 mmol^-1
Question:
Write the Nernst equation and emf of the following cells at 298 K: (i) Mg(s)∣Mg+2(0.001 M)∥Cu+2(0.0001 M)∣Cu(s). (ii) Fe(s)∣Fe+2(0.001 M)∥H+(1M)∣H2(g)(1bar)∣Pt(s) (iii) Sn(s)∣Sn2+(0.050 M)∥H+(0.020 M)∣H2(g)(1bar)∣Pt(s) (iv) Pt(s)∣Br2(l)∣Br-(0.010 M)∥H+(0.030 M)∣H2(g)(1bar)∣Pt(s).
Answer:
(i) Nernst equation: E = E° - (2.303RT/nF)lnQ emf = 0.0591 V
(ii) Nernst equation: E = E° - (2.303RT/nF)lnQ emf = 0.0248 V
(iii) Nernst equation: E = E° - (2.303RT/nF)lnQ emf = -0.0554 V
(iv) Nernst equation: E = E° - (2.303RT/nF)lnQ emf = 0.0417 V
Question:
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 ΔrG⊖ and equilibrium constant of the reactions
Answer:
Step 1: Calculate the standard cell potentials of the galvanic cell by using the equation E°cell = E°cathode - E°anode.
Step 2: Determine the standard reduction potentials (E°) of each reaction by using the standard reduction potential table.
Step 3: Calculate the ΔrG⊖ of each reaction by using the equation ΔrG⊖ = -nFE°, where n is the number of moles of electrons transferred in the reaction and F is the Faraday constant (F = 96,485 C/mol).
Step 4: Calculate the equilibrium constant of each reaction by using the equation K = e-ΔrG⊖/RT, where R is the gas constant (R = 8.314 J/mol K) and T is the temperature in Kelvin.
Question:
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+
Answer:
(i) 1 mol of Al3+ to Al requires 3 moles of electrons, or 3 Faradays of charge.
(ii) 1 mol of Cu2+ to Cu requires 2 moles of electrons, or 2 Faradays of charge.
(iii) 1 mol of MnO4- to Mn2+ requires 5 moles of electrons, or 5 Faradays of charge.
Question:
Conductivity of 0.00241 M acetic acid is 7.896×10-5Scm-1. Calculate its molar conductivity. If ∧m0 for acetic acid is 390.5 S cm2mol-1, what is its dissociation constant?
Answer:
- Molar conductivity (Λm) = Conductivity (Λ) / Concentration (c)
Λm = 7.896×10-5Scm-1 / 0.00241 M Λm = 3.28×10-3 S cm2 mol-1
- Dissociation constant (K) = Λm / Λm0
K = 3.28×10-3 S cm2 mol-1 / 390.5 S cm2 mol-1 K = 8.38×10-5
Question:
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 ΔrGθ and Eθ for the reaction.
Answer:
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Calculate the standard enthalpy change for the reaction, ΔHθ: ΔHθ = [2(-109.3 kJ/mol)] + (-285.8 kJ/mol) - [0 kJ/mol] ΔHθ = -494.1 kJ/mol
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Calculate the standard entropy change for the reaction, ΔSθ: ΔSθ = [2(87.2 J/K mol)] + (70.1 J/K mol) - [0 J/K mol] ΔSθ = 174.3 J/K mol
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Calculate the standard Gibbs free energy change for the reaction, ΔGθ: ΔGθ = ΔHθ - TΔSθ ΔGθ = -494.1 kJ/mol - (298 K)(174.3 J/K mol) ΔGθ = -836.9 kJ/mol
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Calculate the standard electrode potential for the reaction, Eθ: Eθ = -[ΔGθ/(2F)] Eθ = -[-836.9 kJ/mol/(2)(96485 C/mol)] Eθ = +1.07 V
Question:
Define conductivity and molar conductivity for the solution of an electrolyte. Discuss their variation with concentration.
Answer:
Conductivity: Conductivity is a measure of the ability of a material to conduct electricity. It is usually expressed as the reciprocal of electrical resistivity. Conductivity is measured in Siemens per meter (S/m).
Molar Conductivity: Molar conductivity is the conductivity of a solution divided by its molar concentration. It is usually expressed in Siemens per molar (S/M).
Variation with Concentration: The conductivity and molar conductivity of an electrolyte solution both increase with increasing concentration. This is because the higher concentration of ions in the solution increases the number of ions available to carry current, resulting in a higher conductivity. The molar conductivity increases more rapidly than the conductivity because the increase in the number of ions is greater than the increase in concentration.
Question:
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
Answer:
Answer:
- Mg
- Fe
- Al
- Zn
- Cu
Question:
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?
Answer:
(i) 1 mol of H2O to O2
Step 1: Determine the number of moles of electrons involved in the reaction.
The reaction is 2H2O (l) → 2H2 (g) + O2 (g). This reaction involves 4 moles of electrons.
Step 2: Calculate the number of coulombs of electricity required.
1 mole of electrons is equal to 96,500 coulombs of electricity. Therefore, 4 moles of electrons is equal to 386,000 coulombs of electricity.
Therefore, the amount of electricity required for the oxidation of 1 mol of H2O to O2 is 386,000 coulombs.
(ii) 1 mol of FeO to Fe2O3
Step 1: Determine the number of moles of electrons involved in the reaction.
The reaction is FeO (s) → Fe2O3 (s). This reaction involves 8 moles of electrons.
Step 2: Calculate the number of coulombs of electricity required.
1 mole of electrons is equal to 96,500 coulombs of electricity. Therefore, 8 moles of electrons is equal to 772,000 coulombs of electricity.
Therefore, the amount of electricity required for the oxidation of 1 mol of FeO to Fe2O3 is 772,000 coulombs.
Question:
Using the standard electrode potentials given in Table 3.1, 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)
Answer:
(i) Fe3+(aq) + I-(aq) → Fe2+(aq) + I2(aq) Fe3+/Fe2+ E° = -0.77V I−/I2 E° = +0.54V The reaction is feasible because the standard electrode potential for the reaction is positive (+0.77V).
(ii) Ag+(aq) + Cu(s) → Ag(s) + Cu2+(aq) Ag+/Ag E° = +0.80V Cu2+/Cu E° = +0.34V The reaction is feasible because the standard electrode potential for the reaction is positive (+1.14V).
(iii) Fe3+(aq) + Br-(aq) → Fe2+(aq) + Br2(aq) Fe3+/Fe2+ E° = -0.77V Br−/Br2 E° = +1.09V The reaction is feasible because the standard electrode potential for the reaction is positive (+0.32V).
(iv) Ag(s) + Fe3+(aq) → Ag+(aq) + Fe(s) Ag+/Ag E° = +0.80V Fe3+/Fe E° = +0.77V The reaction is feasible because the standard electrode potential for the reaction is positive (+1.57V).
(v) Br2(aq) + Fe2+(aq) → Br−(aq) + Fe3+(aq) Br2/Br− E° = +1.09V Fe2+/Fe3+ E° = -0.77V The reaction is feasible because the standard electrode potential for the reaction is positive (+1.86V).
Question:
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
Answer:
(i) An aqueous solution of AgNO3 with silver electrodes: At the silver electrode (cathode): Reduction of silver ions to silver metal, Ag+ (aq) + e- → Ag (s) At the silver electrode (anode): Oxidation of water to oxygen gas and hydrogen ions, 2H2O (l) → O2 (g) + 4H+ (aq) + 4e-
(ii) An aqueous solution of AgNO3 with platinum electrodes: At the platinum electrode (cathode): Reduction of silver ions to silver metal, Ag+ (aq) + e- → Ag (s) At the platinum electrode (anode): Oxidation of water to oxygen gas and hydrogen ions, 2H2O (l) → O2 (g) + 4H+ (aq) + 4e-
(iii) A dilute solution of H2SO4 with platinum electrodes: At the platinum electrode (cathode): Reduction of hydrogen ions to hydrogen gas, 2H+ (aq) + 2e- → H2 (g) At the platinum electrode (anode): Oxidation of water to oxygen gas and hydrogen ions, 2H2O (l) → O2 (g) + 4H+ (aq) + 4e-
(iv) An aqueous solution of CuCl2 with platinum electrodes: At the platinum electrode (cathode): Reduction of copper ions to copper metal, Cu2+ (aq) + 2e- → Cu (s) At the platinum electrode (anode): Oxidation of chloride ions to chlorine gas, 2Cl- (aq) → Cl2 (g) + 2e-
Question:
Given the standard electrode potentials, K+/K=−2.93 V,Ag+/Ag=0.80 V, Hg2+/Hg=0.79 V, Mg2+/Mg=−2.37V,Cr3+/Cr=−0.74 V Arrange these metals in their increasing order of reducing power.
Answer:
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Arrange the standard electrode potentials in descending order: K+/K = -2.93 V, Mg2+/Mg = -2.37 V, Cr3+/Cr = -0.74 V, Ag+/Ag = 0.80 V, Hg2+/Hg = 0.79 V
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Arrange the metals in increasing order of reducing power: Mg, Cr, Ag, Hg, K
JEE Study Material (Chemistry)
01 The Solid State
02 Solutions
03 Electrochemistry
04 Chemical Kinetics
05 Surface Chemistry
06 General Principles and Processes of Isolation of Elements
07 The p block elements
08 The d and f block elements
09 Coordination Compounds
10 Haloalkanes and Haloarenes
11 Alcohols, Phenols and Ethers
12 Aldehydes, Ketones and Carboxylic Acids
13 Amines
14 Biomolecules
15 Polymers
16 Chemistry in Everyday Life