Q.The enthalpy of atomisation for the reaction CH4(g) → C(g) + 4H(g) is 1665 kJ mol^-1. What is the bond energy of C-H bond?
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Start your 14-day free trial to unlock the full solution →The enthalpy of atomisation of methane represents the total energy required to break all four C-H bonds. Dividing this total energy by the number of bonds gives the average C-H bond energy, which is .
When we talk about the enthalpy of atomisation of a molecule, we are referring to the energy required to break all the chemical bonds within one mole of that substance to produce individual gaseous atoms. This process is always endothermic, meaning it requires energy input.
For a molecule like methane (), which consists of one carbon atom bonded to four hydrogen atoms, the enthalpy of atomisation is the sum of the energies required to break each of these four C-H bonds. Since all the bonds are of the same type (C-H), we can consider the enthalpy of atomisation as four times the average C-H bond energy.
The enthalpy of atomisation () of a polyatomic molecule is the sum of the bond dissociation energies of all the bonds present in one mole of the molecule.
For a molecule with identical bonds, the average bond energy is .
Let's break down the calculation:
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Understand the given reaction:
The reaction provided is:
This reaction explicitly shows one mole of gaseous methane breaking down into one mole of gaseous carbon atoms and four moles of gaseous hydrogen atoms. This is precisely the definition of the enthalpy of atomisation of methane.
The enthalpy change for this reaction is given as .
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Identify the bonds being broken:
In one molecule of , there are four C-H single bonds. To atomise one mole of , all four moles of C-H bonds must be broken.
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Relate enthalpy of atomisation to bond energy:
The total energy required to break all four C-H bonds in one mole of methane is .
If we assume that all C-H bonds in methane have the same average energy, then the enthalpy of atomisation is simply four times the average C-H bond energy. …
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