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What is the empirical formula of a compound that breaks down into 4.12g of n and 0.88g of h? answers?
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What is the empirical formula of a compound that breaks down into 4.12g of n and 0.88g of h? answers?

User Seymone
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Answer:

NH3

Step-by-step explanation:

User Sunny Kashyap
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We know the number of grams of each element, so the first step is to convert that into moles. So for nitrogen, 4.12g N x (1 mol N/14 g N) = 0.29 moles of N. For hydrogen, .88 g H x (1 mol H/1.01 g N) = 0.87 moles of H. The next step is to divide each by the smallest number of moles found. In this case, that is the .29 moles of N. So, for N, 0.29/0.29 = 1. For H, .88/.29 = 3. There is no need for further rounding, so the empirical formula is H3N1.
User Alexandr Priezzhev
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