Chemistry · JEE

Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change Previous Year Questions for JEE

11+ syllabus-aligned questions available

Quick answer

Goodmarks offers 11+ JEE-style PYQs for Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change with detailed solutions. While official past papers rotate yearly, our bank covers the same concepts, difficulty, and question formats tested in JEE Chemistry.

Previous year questions are the fastest way to understand how Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change is tested in JEE. Practise 11+ exam-pattern MCQs modelled on JEE Main and Advanced, with full solutions for every question.

Free sample questions

Attempt 8 free MCQs for Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change. Unlock 3+ more with Pro.

Unlock full bank
Q1ChemistryUnit 7: Redox Reactions and Electrochemistry
Which of the following changes will cause the free energy of a cell reaction to decrease? ZnZnSO4(aq)(x1M)HCl(aq)(x2N\boldsymbol{Z} \boldsymbol{n} \mid \boldsymbol{Z} \boldsymbol{n} \boldsymbol{S} \boldsymbol{O}_{4}(\boldsymbol{a} \boldsymbol{q})\left(\boldsymbol{x}_{1} \boldsymbol{M}\right) \| \boldsymbol{H} \boldsymbol{C l}(\boldsymbol{a} \boldsymbol{q})\left(\boldsymbol{x}_{2} \boldsymbol{N}\right. This question has multiple correct options
Q2ChemistryUnit 7: Redox Reactions and Electrochemistry
Assertion In the Daniel cell, if concentration of Cu2+C u^{2+} and Zn2+Z n^{2+} ions are doubled, the emf of the cell will not change. Reason f the concentration of ions in contact with the metals is doubled, the electrode potential is doubled.
Q3ChemistryUnit 7: Redox Reactions and Electrochemistry
For the reaction: Fe2+(aq)+Ag+(aq)Ag(s)+\boldsymbol{F} \boldsymbol{e}^{2+}(\boldsymbol{a} \boldsymbol{q})+\boldsymbol{A} \boldsymbol{g}^{+}(\boldsymbol{a} \boldsymbol{q}) \longrightarrow \boldsymbol{A} \boldsymbol{g}(\boldsymbol{s})+ Fe+3(aq)\boldsymbol{F} \boldsymbol{e}^{+\boldsymbol{3}}(\boldsymbol{a} \boldsymbol{q}) Predict which change will decrease the cell voltage?
Q4ChemistryUnit 7: Redox Reactions and Electrochemistry
Calculate Ecell\boldsymbol{E}_{\text {cell}} Pt(s)H2(g)1atmHA(Ka=107)1MHB(k\boldsymbol{P t}(\boldsymbol{s})\left|\boldsymbol{H}_{2}(\boldsymbol{g})_{1 a t m}\right| \boldsymbol{H} \boldsymbol{A}_{\left(\boldsymbol{K}_{a}=10^{-7}\right)} \mathbf{1} \boldsymbol{M} \| \boldsymbol{H} \boldsymbol{B}_{(\boldsymbol{k}}
Q5ChemistryUnit 7: Redox Reactions and Electrochemistry
The standard cell potential for ZnZn2+Cu2+CuZ n\left|Z n^{2+}\right|\left|C u^{2+}\right| C u is 1.10V.1.10 V . When the cell is completely discharged, log[Zn2+]/[Cu2+]\log \left[Z n^{2+}\right] /\left[C u^{2+}\right] is closest to:
Q6ChemistryUnit 7: Redox Reactions and Electrochemistry
The standard oxidation potential of Zn referred to SHE is 0.76V0.76 \mathrm{V} and that of Cu\mathrm{Cu} is 0.34V-0.34 V at 25C.25^{\circ} \mathrm{C} . When excess of Zn is added to CuSO4,ZnC u S O_{4}, Z n displaces Cu2+C u^{2+} till equilibrium is reached. What is the ratio of Zn2+Z n^{2+} to Cu2+C u^{2+} ions at equilibrium? Express the ans in the form [Zn2+]/[Cu2+]=k×1037,\left[Z n^{2+}\right] /\left[C u^{2+}\right]=k \times 10^{37}, and find kk
Q7ChemistryUnit 7: Redox Reactions and Electrochemistry
The equilibrium constant for the reaction Sr(s)+Mg+2(aq)Sr+2(aq)+\boldsymbol{S} \boldsymbol{r}(\boldsymbol{s})+\boldsymbol{M} \boldsymbol{g}^{+2}(\boldsymbol{a} \boldsymbol{q}) \rightleftharpoons \boldsymbol{S} \boldsymbol{r}^{+2}(\boldsymbol{a} \boldsymbol{q})+ Mg(s)M g(s) is 4×10124 \times 10^{12} at 25C25^{\circ} C The EoE^{o} for a cell made up of the SrSr+2\boldsymbol{S} \boldsymbol{r} \mid \boldsymbol{S} \boldsymbol{r}^{+2} and Mg+2Mg\boldsymbol{M} \boldsymbol{g}^{+2} \mid \boldsymbol{M} \boldsymbol{g} half cells (log(\log 2=0.3)\mathbf{2}=\mathbf{0 . 3})
Q8ChemistryUnit 7: Redox Reactions and Electrochemistry
The EcellE_{\text {cell}} for a given cell is 1.2346 and 1.2340V1.2340 V at 300K300 \mathrm{K} and 310K310 \mathrm{K} respectively. Calculate the change in entropy during the cell reaction if the redox change involves three electrons.

Want unlimited Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change practice?

Pro unlocks the full question bank, topic filters, and attempt history.

Frequently asked questions

Why practise PYQs for Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change?

PYQs reveal recurring concepts, common traps, and the difficulty level JEE expects. Solving them builds exam temperament and time management.

Does Goodmarks have actual JEE past papers?

Our bank includes exam-style MCQs aligned with JEE Main Chemistry syllabus for Emf of a Galvanic cell and its measurement, Nernst equation and its applications, relationship between cell potential and Gibbs' energy change, covering the same topics as previous year papers.

How should I use PYQs for Redox Reactions and Electrochemistry?

Solve timed sets, review every explanation, note weak subtopics, then revisit with focused practice on Goodmarks.

Are PYQ solutions step-by-step?

Yes. Every question includes the correct answer and a detailed explanation showing the reasoning.