Bond dissociation enthalpy of `H_(2)` , `Cl_(2)` and `HCl` are `434, 242` and `431KJmol^(-1)` respectively. Enthalpy of formation of `HCl` isA. `93 kJ mol^(-1)`B. `- 245 kJ mol^(-1)`C. `- 93 kJ mol^(-1)`D. `245 kJ mol^(-1)`

Bond dissociation enthalpy of `H_(2)` , `Cl_(2)` and `HCl` are `434, 2

1.	Bond dissociation enthalpy of `H_(2)` , `Cl_(2)` and `HCl` are `434, 242` and `431KJmol^(-1)` respectively. Enthalpy of formation of `HCl` isA. `93 kJ mol^(-1)`B. `- 245 kJ mol^(-1)`C. `- 93 kJ mol^(-1)`D. `245 kJ mol^(-1)`
Answer» Correct Answer - C The enthalpy of formation of `HCl` is the enthalpy change for the following reaction: `(1)/(2) H_(2) (g) + (1)/(2) Cl_(2) (g) rarr HCl (g),` `Delta_(r) H^(@) = ?` That is, one mole of `HCl` is synthesized in its standard state from tis elements in their standard states. According to Eq., we have `Delta_(r) H^(@) = sum "Bond enthalpies"_("reactants") - sum "Bond enthalies"_("products")` `((1)/(2) Delta_(H - H) H^(@) + (1)/(2) Delta_(Cl - Cl) H^(@)) - Delta_(H - Cl) H^(@)` `= (1)/(2) (434) + (1)/(2) (242) - (431)` `= (271) + (121) - (431) = - 93 kJ mol^(-1)`

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Bond dissociation enthalpy of `H_(2)` , `Cl_(2)` and `HCl` are `434, 242` and `431KJmol^(-1)` respectively. Enthalpy of formation of `HCl` isA. `93 kJ mol^(-1)`B. `- 245 kJ mol^(-1)`C. `- 93 kJ mol^(-1)`D. `245 kJ mol^(-1)`

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