Question:medium

A current of $0.5\text{ amp}$ is passed through molten $AlCl_3$ for $96.5\text{ seconds}$. The volume of $Cl_2$ gas liberated at STP at anode (in ml) is ($Cl = 35.5\text{ u}$) ($1F = 96500 \text{ C mol}^{-1}$)

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Always double-check the units! The question asks for the volume in ml, but standard molar volume is often remembered in Litres ($22.4\text{ L}$). Multiplying by 1000 early can prevent decimal errors.
  • $11.2$
  • $22.4$
  • $5.6$
  • $33.6$
Show Solution

The Correct Option is C

Solution and Explanation

Step 1: Calculate the total charge ($Q$): $$Q = I \times t$$ $$Q = 0.5\text{ A} \times 96.5\text{ s} = 48.25\text{ Coulombs}$$

Step 2: Identify the electrode reaction for $Cl_2$: At the anode, chloride ions are oxidized: $$2Cl^- \to Cl_2(g) + 2e^-$$ This equation shows that

2 moles of electrons (2 Faraday) are required to produce

1 mole of $Cl_2$ gas.

Step 3: Calculate the moles of $Cl_2$ produced: $$\text{Moles of } Cl_2 = \frac{Q}{n \times F}$$ $$\text{Moles of } Cl_2 = \frac{48.25}{2 \times 96500} = \frac{48.25}{193000} = 0.00025\text{ moles}$$
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