Question

Find the enthalpy of formation of Hydrogen flouride on the basis of following data :
Bond energy of $H-H=434kJmo{l}^{-1}$
Bond energy of $F-F=158kJmo{l}^{-1}$
Bond energy of $H-F=565kJmo{l}^{-1}$

• A. $300kJmo{l}^{-1}$
• B. $269kJmo{l}^{-1}$
• C. $250kJmo{l}^{-1}$
• D. $275kJmo{l}^{-1}$

Answer 1

The correct option is B $269kJmo{l}^{-1}$

We have to find enthalpy for the reaction
$\frac{1}{2}{H}_2\left(g\right)+\frac{1}{2}{F}_2\left(g\right)\to HF\left(g\right)$
$\Delta H=B.E\left(Reactants\right)-B.E\left(Products\right)$
$=\frac{1}{2}B.E\left(H_2\right)+\frac{1}{2}B.E\left(F_2\right)-B.E\left(HF\right)$
$=\frac{1}{2}\times 434+\frac{1}{2}\times 158-565$
$=269kJmo{l}^{-1}$