Ответ: М(Al4C3) = 27 * 4 + 12 * 3 = 144 г/моль
w(Al) = Ar(Al) * n/(Al4C3) * 100% = 27 * 4/144 * 100% =75%
w(С) = Ar(С) * n/(Al4C3) * 100% =12 * 3/144 * 100% = 25%
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Ответ: М(Al4C3) = 27 * 4 + 12 * 3 = 144 г/моль
w(Al) = Ar(Al) * n/(Al4C3) * 100% = 27 * 4/144 * 100% =75%
w(С) = Ar(С) * n/(Al4C3) * 100% =12 * 3/144 * 100% = 25%