MCQMediumJEE 2026Enthalpies (Bond, Combustion, Formation…)

JEE Chemistry 2026 Question with Solution

Consider the following data : ΔfH(methane,g)=X  kJ mol1\Delta_f H^\ominus (\text{methane}, g) = -X \; \text{kJ mol}^{-1}

Enthalpy of sublimation of graphite =Y  kJ mol1= Y \; \text{kJ mol}^{-1}

Dissociation enthalpy of H2=Z  kJ mol1H_2 = Z \; \text{kJ mol}^{-1}

The bond enthalpy of CHC-H bond is given by :

  • A

    X+Y+4Z2\frac{X+Y+4Z}{2}

  • B

    X+Y+2Z4\frac{X+Y+2Z}{4}

  • C

    X+Y+Z4\frac{-X+Y+Z}{4}

  • D

    X+Y+ZX+Y+Z

Answer

Correct answer:B

Step-by-step solution

Standard Method

Given:

  • ΔfH(methane,g)=X  kJ mol1\Delta_f H^\ominus(\text{methane}, g) = -X \; \text{kJ mol}^{-1}
  • Enthalpy of sublimation of graphite =Y  kJ mol1= Y \; \text{kJ mol}^{-1}
  • Dissociation enthalpy of H2=Z  kJ mol1H_2 = Z \; \text{kJ mol}^{-1}

Find: The bond enthalpy of the CHC-H bond.

Use Hess's law and an atomization cycle.

For the standard formation of methane,

C(graphite)+2H2(g)CH4(g)C(\text{graphite}) + 2H_2(g) \rightarrow CH_4(g)

with enthalpy change

ΔH=X\Delta H = -X

Hess Cycle Expansion

Break the formation process into steps shown in the solution:

  1. Sublimation of graphite:
C(graphite)C(g)C(\text{graphite}) \rightarrow C(g) ΔH=Y\Delta H = Y
  1. Dissociation of hydrogen:
2H2(g)4H(g)2H_2(g) \rightarrow 4H(g) ΔH=2Z\Delta H = 2Z
  1. Bond formation to make methane:
C(g)+4H(g)CH4(g)C(g) + 4H(g) \rightarrow CH_4(g) ΔH=4×B.E.(CH)\Delta H = -4 \times \text{B.E.}(C-H)

Adding all steps,

X=Y+2Z4×B.E.(CH)-X = Y + 2Z - 4 \times \text{B.E.}(C-H)

Rearranging,

4×B.E.(CH)=X+Y+2Z4 \times \text{B.E.}(C-H) = X + Y + 2Z

Therefore,

B.E.(CH)=X+Y+2Z4\text{B.E.}(C-H) = \frac{X+Y+2Z}{4}

Hence, the correct option is B.

The hint also matches this sign convention: bond breaking and sublimation are endothermic, while bond formation is exothermic. Therefore, the bond enthalpy is X+Y+2Z4\frac{X+Y+2Z}{4}.

Common mistakes

  • Using the wrong sign for the enthalpy of formation of methane. Here ΔfH=X\Delta_f H = -X, not +X+X. Treating it as positive changes the final algebra. Always write the formation reaction first and substitute the sign exactly as given.

  • Forgetting that dissociation of 2H22H_2 produces 4H4H atoms, so the total enthalpy is 2Z2Z, not ZZ or 4Z4Z. Count the number of moles of H2H_2 molecules being dissociated before substituting.

  • Missing the factor of 44 for methane. Since CH4CH_4 contains four CHC-H bonds, the bond-formation step is 4×B.E.(CH)-4 \times \text{B.E.}(C-H). Use the total bond enthalpy first, then divide by 44 to get one bond.

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