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13 May, 17:04

Consider the reaction.

Pb (SO4) 2 + 2 Zn → 2 ZnSO4 + Pb

If 0.311 mol of zinc reacts with excess lead (IV) sulfate, how many grams of zinc sulfate will be produced in the reaction?

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Answers (2)
  1. 13 May, 17:05
    0
    Answer: m = 50 g ZnSO4

    Explanation: First is convert the moles of Zn to the moles of ZnSO4 by having their mole ratio which is 2:2 based from the balanced equation. Next is convert the moles of ZnSO4 to mass using its molar mass.

    0.311 mole Zn x 2 moles ZnSO4 / 2 moles Zn

    = 0.311 moles ZnSO4

    0.311 moles ZnSO4 x 161 g ZnSO4 / 1 mole ZnSO4

    = 50 ZnSO4
  2. 13 May, 17:33
    0
    mass ZnSO₄ = 50.2 gms (3 sig. figs.)

    Explanation:

    Pb (SO₄) ₂ (aq) + 2 Zn (s) = > ZnSO₄ (aq) + Pb (s)

    => Because coefficients of Zn and ZnSO₄ are the same, 0.311 mole Zn (s) yields the same 0.311 mol ZnSO₄ (aq).

    => Convert moles to grams by multiplying 0.311 moles ZnSO₄ by formula weight of ZnSO₄ ( = 161.4 g/mol)

    That is, grams ZnSO₄ = 0.311 mole ZnSO₄ x 161.4 g/mol = 50.1954 g ≅ 50.2 g (3 sig. figs.)
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