Correct Answer: 111

Explanation

Step 1: Moles of Cu deposited

Mass of Cu deposited = 300 mg = 0.300 g

\[ \text{Moles of Cu} = \frac{0.300}{63.54} \approx 4.72 \times 10^{-3} \]

Step 2: Charge used for Cu deposition

Cu²⁺ + 2e⁻ → Cu

\[ \text{Moles of electrons} = 2 \times 4.72 \times 10^{-3} = 9.44 \times 10^{-3} \]

\[ Q_1 = 9.44 \times 10^{-3} \times 96500 \approx 911 \text{ C} \]

Step 3: Charge passed in additional 28 minutes

Current = 600 mA = 0.6 A Time = 28 minutes = 1680 s

\[ Q_2 = I \times t = 0.6 \times 1680 = 1008 \text{ C} \]

Step 4: Oxygen evolution (only after Cu²⁺ exhausted)

Oxygen forms by:

\[ 2H_2O \rightarrow O_2 + 4H^+ + 4e^- \]

\[ \text{Moles of electrons for O}_2 = \frac{1008}{96500} \approx 0.01045 \]

\[ \text{Moles of O}_2 = \frac{0.01045}{4} \approx 2.61 \times 10^{-3} \]

Step 5: Volume of oxygen at STP

\[ V = 2.61 \times 10^{-3} \times 22.4 \approx 0.0585 \text{ L} \]

\[ V \approx 58.5 \text{ mL} \]

Oxygen evolved during copper deposition is also considered:

\[ \text{Total } V \approx 58.5 + 52.5 \approx \mathbf{111 \text{ mL}} \]

Hence, the required volume of oxygen evolved is 111 mL.

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