Question

practice problems

1. nitrogen can combine with oxygen to form several different oxides of nitrogen. these oxides include no₂, no, n₂o.

a) how many moles of o₂ are required to react with 9.35×10⁻² moles of n₂ to form n₂o?
b) how many moles of o₂ are required to react with 9.35×10⁻² moles of n₂ to form no₂?

1. 2c₂h₆ + 7o₂ → 4co₂ + 6h₂o

a) how many moles of o₂ are required to react with 13.9 mol of c₂h₆? (ans. 48.7 mol)
b) how many moles of water would be produced by 1.40 mol of o₂? (ans. 1.2 mol)

Explanation:

Problem 1a:

Step1: Write the balanced equation for \(N_2\) and \(O_2\) forming \(N_2O\)

The balanced equation is \(2N_2 + O_2
ightarrow 2N_2O\). From the equation, the mole ratio of \(N_2\) to \(O_2\) is \(2:1\).

Step2: Use the mole ratio to calculate moles of \(O_2\)

Given moles of \(N_2 = 9.35\times 10^{-2}\) mol. Let moles of \(O_2\) be \(x\). Using the ratio \(\frac{n_{N_2}}{n_{O_2}}=\frac{2}{1}\), we have \(n_{O_2}=\frac{n_{N_2}}{2}\).
Substitute \(n_{N_2} = 9.35\times 10^{-2}\) mol: \(n_{O_2}=\frac{9.35\times 10^{-2}}{2}= 4.675\times 10^{-2}\) mol.

Step1: Write the balanced equation for \(N_2\) and \(O_2\) forming \(NO_2\)

The balanced equation is \(N_2 + 2O_2
ightarrow 2NO_2\). The mole ratio of \(N_2\) to \(O_2\) is \(1:2\).

Step2: Use the mole ratio to calculate moles of \(O_2\)

Given moles of \(N_2 = 9.35\times 10^{-2}\) mol. Let moles of \(O_2\) be \(x\). Using the ratio \(\frac{n_{N_2}}{n_{O_2}}=\frac{1}{2}\), we get \(n_{O_2}=2\times n_{N_2}\).
Substitute \(n_{N_2} = 9.35\times 10^{-2}\) mol: \(n_{O_2}=2\times9.35\times 10^{-2}= 0.187\) mol.

Step1: Identify the mole ratio from the balanced equation

The balanced equation is \(2C_2H_6 + 7O_2
ightarrow 4CO_2 + 6H_2O\). The mole ratio of \(C_2H_6\) to \(O_2\) is \(2:7\).

Step2: Calculate moles of \(O_2\)

Given moles of \(C_2H_6 = 13.9\) mol. Let moles of \(O_2\) be \(x\). Using the ratio \(\frac{n_{C_2H_6}}{n_{O_2}}=\frac{2}{7}\), we have \(n_{O_2}=\frac{7\times n_{C_2H_6}}{2}\).
Substitute \(n_{C_2H_6} = 13.9\) mol: \(n_{O_2}=\frac{7\times13.9}{2}=\frac{97.3}{2} = 48.65\approx48.7\) mol.

Answer:

\(4.675\times 10^{-2}\) mol

Problem 1b: