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3 December, 08:38

The percent yield of a reaction between elemental zinc and an aqueous solution of 0.50 M hydro-chloric acid is known to be 78.0%. We need to produce 35.5 g of zinc chloride, what is the minimum amount in mL of hydrochloric acid that are required, given that zinc is in excess

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  1. 3 December, 10:44
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    1.3 * 10³ mL

    Explanation:

    Let's consider the following reaction.

    Zn + 2 HCl → ZnCl₂ + H₂

    The percent yield is 78.0%. The real yield (R) of zinc chloride is 35.5 g. The theoretical yield (T) of zinc chloride is:

    35.5 g (R) * (100 g T / 78.0 g R) = 45.5 g T

    The molar mass of zinc chloride is 136.29 g/mol. The moles corresponding to 45.5 g of zinc chloride is:

    45.5 g * (1 mol / 136.29 g) = 0.334 mol

    The molar ratio of HCl to ZnCl₂ is 2:1. The moles of HCl that react with 0.334 moles of ZnCl₂ are 2 * 0.334 mol = 0.668 mol.

    We need 0.668 moles of a 0.50 M HCl solution. The volume required is:

    0.668 mol * (1000 mL/0.50 mol) = 1.3 * 10³ mL
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