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how many grams of nitrogen, n2, would be required to react with 6.25 mo…

Question

how many grams of nitrogen, n2, would be required to react with 6.25 moles hydrogen, h2? n2 + 3h2 → 2nh3 molar mass n2: 28.02 g/mol ? g n2

Explanation:

Step1: Find moles of \(N_2\)

From the balanced equation \(N_2 + 3H_2
ightarrow2NH_3\), the mole ratio of \(N_2\) to \(H_2\) is \(1:3\).
Let \(n(N_2)\) be the moles of \(N_2\) and \(n(H_2) = 6.25\) mol.
Using the mole - ratio formula \(n(N_2)=\frac{1}{3}n(H_2)\)
\(n(N_2)=\frac{1}{3}\times6.25\space mol=\frac{6.25}{3}\space mol\approx2.083\space mol\)

Step2: Calculate mass of \(N_2\)

The formula for mass \(m = n\times M\), where \(n\) is the number of moles and \(M\) is the molar mass.
Given \(M(N_2)=28.02\space g/mol\) and \(n(N_2)\approx2.083\space mol\)
\(m(N_2)=n(N_2)\times M(N_2)\)
\(m(N_2)=2.083\space mol\times28.02\space g/mol\)
\(m(N_2)\approx58.4\space g\)

Answer:

\(58.4\space g\)