MCQEasyJEE 2023Salt Analysis (Cations & Anions)

JEE Chemistry 2023 Question with Solution

During the qualitative analysis of SO32\text{SO}_3^{2-} using dilute H2SO4\text{H}_2\text{SO}_4, SO2\text{SO}_2 gas is evolved which turns K2Cr2O7\text{K}_2\text{Cr}_2\text{O}_7 solution (acidified with dilute H2SO4\text{H}_2\text{SO}_4):

  • A

    Black

  • B

    Red

  • C

    Green

  • D

    Blue

Answer

Correct answer:C

Step-by-step solution

Standard Method

Given: SO32\text{SO}_3^{2-} is treated with dilute H2SO4\text{H}_2\text{SO}_4 and the evolved SO2\text{SO}_2 gas is passed through acidified K2Cr2O7\text{K}_2\text{Cr}_2\text{O}_7 solution.

Find: The colour produced in the acidified dichromate solution.

Apply the principle: SO2\text{SO}_2 acts as a reducing agent and reduces dichromate ion to Cr3+\text{Cr}^{3+}.

The reaction described in the solution is:

Cr2O72+SO32+H+Cr3++SO42\text{Cr}_2\text{O}_7^{2-} + \text{SO}_3^{2-} + \text{H}^+ \rightarrow \text{Cr}^{3+} + \text{SO}_4^{2-}

Dichromate ion is orange, but on reduction it forms Cr3+\text{Cr}^{3+} ions, which are green in colour.

Therefore, the solution turns Green, so the correct option is C.

Common mistakes

  • Confusing the original orange colour of dichromate with the final observed colour. The question asks for the colour after reaction, not before reaction. Track the product formed after reduction.

  • Assuming SO2\text{SO}_2 is only an acidic gas and not a reducing agent. Here SO2\text{SO}_2 reduces dichromate to Cr3+\text{Cr}^{3+}, and that reduction causes the green colour.

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