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Question

The amount of zinc required to produce 1.12 mL of H2 at STP on treatment with dil.HCl will be: (Given: Molar mass of Zn= 65 g/mol)

A
60 g
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B
0.65 g
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C
32.5×104 g
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D
6.5 g
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Solution

The correct option is C 32.5×104 g
The reaction of Zinc with dil.HCl gives:
Zn+2HClZnCl2+H2
22400 mL of H2 is produced from 65 g of zinc.
So, 1.12 mL of H2 will be produced from (6522400×1.12)=32.5×104 g of zinc.

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