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4 November, 10:08

What is the empirical formula for a compound that is 43.4% C, 1.2% H, 38.6% O, and 16.9% N?

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  1. 4 November, 12:13
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    C3HO2N

    Explanation:

    C: 43.4 g x 1 mole = 3.613444679 / 1.190547056 = 3.0412.0107 g

    H: 1.2 g x 1 mole = 1.190547056 / 1.190547056 = 1.00794

    O : 38.6 g x 1 mole = 2.412590472 / 1.190547056 = 2.0315.9994 g

    N : 16.9 g x 1 mole = 1.206561984 / 1.190547056 = 1.0114.00674 g

    C=3

    H=1

    O=2

    N=1

    : C3HO2N
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