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Bond enthalpy (also known as bond dissociation enthalpy) is the amount of energy required to break one mole of a specific covalent bond in a molecule, in the gaseous state. This process is always endothermic because energy is required to break bonds, and therefore the enthalpy change () is positive.
The mean bond enthalpy is the average energy needed to break one mole of a specific type of bond across a range of compounds where that bond exists. Since the strength of a bond can vary slightly depending on its chemical environment, the "mean" value accounts for these variations.
The enthalpy change () of a reaction can be calculated using mean bond enthalpies by comparing the energy needed to break the bonds in the reactants to the energy released when new bonds form in the products.
The formula is:
Example: For the reaction:
If the bond enthalpies are:
Step 1: Energy to break the bonds in the reactants:
Step 2: Energy released when forming new bonds in the products:
Step 3: Overall enthalpy change:
This is an exothermic reaction because is negative.
Calculations using mean bond enthalpies often differ from those done using Hess' Law for several reasons:
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