Skip to content
Question

Q.In aqueous solution, Cr2O72−Cr_2O_7^{2-} ion converts to which of the following in alkaline medium ? (A) Cr3+Cr^{3+} (B) CrO42−CrO_4^{2-} (C) CrOCrO (D) CrO3CrO_3

CBSECBSE Class XII Board 2026MCQ· 1mImportance★★★★★
🔒 Locked · start free trial →

You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.

Start your 14-day free trial to unlock the full solution →

In alkaline medium, dichromate (Cr2O72−Cr_2O_7^{2-}) converts to chromate (CrO42−CrO_4^{2-}) without any change in oxidation state — it’s a simple acid-base equilibrium, not a redox reaction. The correct option is (B).

The key to this question lies in understanding that the conversion of dichromate to chromate is not a redox reaction — the oxidation state of chromium remains +6 throughout. Many students instinctively think of reduction to Cr3+Cr^{3+} because they associate dichromate with strong oxidizing behaviour, but that only happens in acidic medium. In alkaline conditions, the chemistry is entirely different.

Let’s walk through the reasoning step by step.

  1. Recall the oxidation state of chromium in dichromate.

    In Cr2O72−Cr_2O_7^{2-}, each oxygen is -2, so total from seven oxygens is -14. The ion has a -2 charge, so the sum of oxidation states of the two chromium atoms must be +12. Hence each Cr is in the +6 state.

  2. Now consider the alkaline medium.

    When you add a base (like NaOH) to a solution of K2Cr2O7K_2Cr_2O_7, the dichromate ion reacts with hydroxide ions. The reaction is:

Cr2O72−+2OH−→2CrO42−+H2OCr_2O_7^{2-} + 2OH^- \rightarrow 2CrO_4^{2-} + H_2O

Notice that the oxidation state of Cr in CrO42−CrO_4^{2-} is also +6 (four oxygens at -2 give -8, charge -2, so Cr = +6). No electrons are transferred — this is an acid-base equilibrium, not a redox change.

  1. Why does this happen? Dichromate exists in equilibrium with chromate, and the position depends on pH. In acidic solution, the equilibrium shifts toward dichromate; in alkaline solution, it shifts toward chromate. The reaction is:

2CrO42−+2H+⇌Cr2O72−+H2O2CrO_4^{2-} + 2H^+ \rightleftharpoons Cr_2O_7^{2-} + H_2O

Adding OH−OH^- removes H+H^+, pulling the equilibrium to the left — producing chromate. …

Unlock everything free for 14 days

  • Full step-by-step solutions
  • Concept-first explanations
  • Methods, shortcuts & mistakes
  • PYQ mapping + timed mock tests

Full access for 14 days. No credit card required.