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26 February, 21:16

What mass of caco3 (in grams) is needed to make 10.5 l of a 1.50 m caco3 solution?

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  1. 26 February, 22:36
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    dа ta:

    M = 1.50 (assiming the data is Molarity and not molality, which is written with capital letter)

    V = 10.5 l

    n = ?

    Formulas:

    M = n / V = > n = M * V

    n = mass in grams / molar mass = > mass in grams = n * molar mass

    Solution

    n = 1.50 * 10. 5 l = 15.75 moles

    molar mass CaCO3 = 40.08 g/mol + 12.01 g/mol + 3 * 16 g/mol = 100.09 g/mol

    mass in grams = 15.75 moles * 100.09 g/mol = 1,576.4 g.

    Answer: 1,576 g
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