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QUESTION IMAGE

use the bond energy values in the table provided to calculate the \\( \…

Question

use the bond energy values in the table provided to calculate the \\( \delta h \\), in \\( \mathrm{kj} \\), for the reaction:

\\( \mathrm{h}_{2}(\mathrm{~g})+\mathrm{cl}_{2}(\mathrm{~g}) \
ightarrow 2 \mathrm{hcl}(\mathrm{g}) \\)

bondbe (kj/mol)
\\( \mathrm{cl}-\mathrm{cl} \\)243
\\( \mathrm{h}-\mathrm{cl} \\)432

report your answer to three significant figures. do not include units in your answer.

Explanation:

Step1: Calculate energy to break bonds

Energy to break \(H - H\) and \(Cl - Cl\) bonds:
\(436+243\) \(= 679\)

Step2: Calculate energy released from forming bonds

Energy released from forming \(2\) \(H - Cl\) bonds:
\(2\times432\) \(= 864\)

Step3: Calculate \(\Delta H\)

\(\Delta H=\) (Energy to break bonds) - (Energy released from forming bonds)
\(\Delta H = 679-864=-185\)

Answer:

\(-185\)