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14 June, 12:09

What is the molality of a solution that contains 75.2 grams of AgClO4 in 885 grams of benzene?

A.) 0.41 m

B.) 8.20 m

C.) 4.10 m

D.) 0.83 m

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Answers (1)
  1. 14 June, 12:37
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    Answer is: C.) 4.10 m.

    m (AgClO₄) = 75,2 g.

    n (AgClO₄) = m (AgClO₄) : M (AgClO₄).

    n (AgClO₄) = 75,2 g : 207,31 g/mol.

    n (AgClO₄) = 0,362 mol.

    m (C₆H₆) = 885 g : 1000 g/kg = 0,885 kg.

    b (solution) = n (AgClO₄) : m (C₆H₆).

    b (solution) = 0,362 mol : 0,885 kg.

    b (solution) = 0,41 mol/kg.
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