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17 November, 22:06

Chlorine gas can be prepared in the laboratory by the reaction of hydrochloric acid with manganese (IV) oxide.

4 HCl (aq) + MnO 2 (s) ⟶ MnCl 2 (aq) + 2 H 2 O (l) + Cl 2 (g)

A sample of 37.3 g MnO 2 37.3 g MnO2 is added to a solution containing 50.1 g HCl

(a) What is the limiting reactant? MnO2 or HCL? (b) What is the theortical yield of CO2? (c) If the yield of the reaction is 79.9%, what is the actual yield of chlorine?

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  1. 17 November, 22:25
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    a. HCl

    b. 24.3 g of Cl₂

    c. 19.4 g of Cl₂

    Explanation:

    a. In order to determine the limiting reactant we convert the mass of each reactant to moles.

    The reaction is: 4HCl (aq) + MnO₂ (s) → MnCl₂ (aq) + 2H₂O (l) + Cl₂ (g)

    37.3 g / 86.94g/mol = 0.429 moles of manganese dioxide

    50.1 g / 36.45 g/mol = 1.37 moles of HCl

    Ratio is 1:4. 1 mol of MnO₂ needs 4 moles of hydrochloric to react

    Then, 0.429 moles of dioxide will react with (0.429. 4) / 1 = 1.71 moles of HCl.

    At least, we have 1.37 moles, so the HCl is the limiting reactant.

    b. In this question, we can work with stoichiometry with a rule of three:

    4 moles of HCl produce 1 mol of chlorine

    Then, 1.37 moles of HCl will produce (1.37. 1) / 4 = 0.3425 moles of Cl₂

    We convert the moles to mass → 24.3 g of Cl₂

    c. In order to determine the actual yield of chlorine, we multiply

    Theoretical yield. Yield percent/100 → 24.3 g. 79.9/100 = 19.4 g
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