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23 August, 07:25

How many grams of CaCo3 are required to prepare 50.0g of CaO

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  1. 23 August, 09:32
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    Answer is: 89 g of CaCO₃ is equired to prepare 50.0g of CaO.

    Chemical reaction: CaCO₃ → CaO + CO₂.

    m (CaO) = 50,0 g.

    m (CaCO₃) = ?

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

    n (CaO) = 50,0 g : 56 g/mol.

    n (CaO) = 0,89 mol.

    from reaction: n (CaCO₃) : n (CaO) = 1 : 1.

    n (CaCO₃) = n (CaO).

    n (CaCO₃) = 0,89 mol.

    m (CaCO₃) = m (CaCO₃) · M (CaCO₃).

    m (CaCO₃) = 0,89 mol · 100 g/mol

    m (CaCO₃) = 89 g.

    n - amount of substance.
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