NVAMediumJEE 2026Nernst Equation

JEE Chemistry 2026 Question with Solution

Consider the following redox reaction taking place in acidic medium: BH4(aq)+ClO3(aq)H2BO3(aq)+Cl(aq)\mathrm{BH_4^- (aq) + ClO_3^- (aq) \rightarrow H_2BO_3^- (aq) + Cl^- (aq)}

If the Nernst equation for the above balanced reaction is Ecell=EcellRTnFlnQ,E_{cell} = E^\circ_{cell} - \frac{RT}{nF}\ln Q, then the value of nn is _____ (Nearest integer).

Answer

Correct answer:6

Step-by-step solution

Standard Method

Given: The redox reaction is BH4(aq)+ClO3(aq)H2BO3(aq)+Cl(aq)\mathrm{BH_4^- (aq) + ClO_3^- (aq) \rightarrow H_2BO_3^- (aq) + Cl^- (aq)} in acidic medium.

Find: The value of nn in the Nernst equation, where nn is the number of electrons transferred in the balanced redox reaction.

Concept: In the Nernst equation, nn represents the total number of electrons exchanged in the balanced redox reaction.

Step 1: Identify oxidation and reduction

  • BH4H2BO3\mathrm{BH_4^- \rightarrow H_2BO_3^-}: Boron is oxidised.
  • ClO3Cl\mathrm{ClO_3^- \rightarrow Cl^-}: Chlorine is reduced.

Step 2: Balance the oxidation half-reaction Oxidation state of boron changes from 3-3 in BH4\mathrm{BH_4^-} to +3+3 in H2BO3\mathrm{H_2BO_3^-}. So, the loss is 66 electrons.

BH4+3H2OH2BO3+8H++6e\mathrm{BH_4^- + 3H_2O \rightarrow H_2BO_3^- + 8H^+ + 6e^-}

Step 3: Balance the reduction half-reaction Oxidation state of chlorine changes from +5+5 in ClO3\mathrm{ClO_3^-} to 1-1 in Cl\mathrm{Cl^-}. So, the gain is 66 electrons.

ClO3+6H++6eCl+3H2O\mathrm{ClO_3^- + 6H^+ + 6e^- \rightarrow Cl^- + 3H_2O}

Step 4: Add the two half-reactions Since both half-reactions involve 6e6e^-, the electrons cancel directly.

BH4+ClO3+2H2OH2BO3+Cl+2H+\mathrm{BH_4^- + ClO_3^- + 2H_2O \rightarrow H_2BO_3^- + Cl^- + 2H^+}

Step 5: Determine nn From the balanced equation, the number of electrons transferred is 66.

Therefore, n=6n = 6.

Oxidation Number Approach

Given: BH4\mathrm{BH_4^-} is converted to H2BO3\mathrm{H_2BO_3^-} and ClO3\mathrm{ClO_3^-} is converted to Cl\mathrm{Cl^-}.

Find: The total electrons transferred, that is, nn.

Boron changes from 3-3 to +3+3, so it loses 6e6e^-. Chlorine changes from +5+5 to 1-1, so it gains 6e6e^-.

Because the electron loss and gain are both 66, the balanced redox process involves transfer of 66 electrons in total.

Therefore, the value of nn in the Nernst equation is 66.

The solution lists Correct Answer: 24, but the balancing shown in the working clearly gives n=6n = 6. Hence the working is taken as authoritative.

Common mistakes

  • Taking nn as the sum of oxidation numbers of all atoms changed is incorrect. In the Nernst equation, nn is the total number of electrons transferred in the balanced redox reaction. Always balance the half-reactions first and then read the electron count.

  • Using the unbalanced skeletal reaction to infer nn leads to the wrong value. The species must be balanced in acidic medium before counting electrons exchanged.

  • Confusing change in oxidation state per atom with the final reaction electron transfer is a common error. Here both half-reactions involve 6e6e^-, so the transferred electrons are 66, not a multiplied or added arbitrary value like 1212 or 2424.

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