of combustion of methane is – X kJ mol–1. The value of DH0 is

(i) =


(ii) >


(iii) <


(iv) = 0


We know,

ΔH = ΔU + ΔngRT


Where,


ΔH is change in enthalpy


ΔU is change in Internal energy


Δng is difference in number of moles of gaseous substance on both side of equation


The chemical equation for combustion of methane is


CH4(g) + 2O2(g) CO2(g) + 2H2O(l)


In the reactant side, there are 3 mole of gases (1 mole CH4 and 2 mole O2)


On product side there is only one mole of gaseous substance (CO2)


Δng = 1 – 3 = - 2


i.e, ΔH = ΔU – 2RT


ΔH > ΔU


Answer is (ii)


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