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\(2 \mathrm{CO}+\mathrm{O}_{2} \rightarrow 2 \mathrm{CO}_{2(\mathrm{~g})}\). Given that ...

\(2 \mathrm{CO}+\mathrm{O}_{2} \rightarrow 2 \mathrm{CO}_{2(\mathrm{~g})}\). Given that \(\Delta \mathrm{H}[\mathrm{CO}]\) is \(-110.4 \mathrm{kJmol}\) and \(\mathrm{H}\left[\mathrm{CO}_{2} \right]\) is \(-393.0 \mathrm{kJmol}^{-1}\) the energy change of the reaction above is?
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  • A \(-565.21 \mathrm{~kJ}\)
  • B \(-282.6 \mathrm{~kJ}\)
  • C \(+282.6 \mathrm{~kJ}\)
  • D \(+565.2 \mathrm{k}]\)
Correct Answer: Option A
Explanation:

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