In the reaction $\mathrm{CH}_{4}+ 2 \mathrm{O}_{2} \rightarrow \mathrm{CO}_{2}+ 2 \mathrm{H}_{2} \mathrm{O}$ how many moles of oxygen are required to burn 16.0 g of methane? - 32.0 - 1.00 - 2.00 - 0.500 Submit Request Answer
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Step 1
I'll solve this stoichiometry problem step by step:

Step 2
: Balanced Chemical Equation

\mathrm{CH}_{4} + 2\mathrm{O}_{2} \rightarrow \mathrm{CO}_{2} + 2\mathrm{H}_{2}\mathrm{O}
The balanced equation is already given:

Final Answer

2.00 moles of oxygen are required to burn 16.0 g of methane.