MCQEasyJEE 2026Gibbs Free Energy & Equilibrium Constant

JEE Chemistry 2026 Question with Solution

The plot of log10K\log_{10}K vs 1T\frac{1}{T} gives a straight line. The intercept and slope respectively are (where KK is equilibrium constant).

  • A

    2.303RΔH, 2.303RΔS\dfrac{2.303R}{\Delta H^\circ},\ \dfrac{2.303R}{\Delta S^\circ}

  • B

    ΔSR2.303, ΔHR2.303-\dfrac{\Delta S^\circ R}{2.303},\ \dfrac{\Delta H^\circ R}{2.303}

  • C

    ΔS2.303R, ΔH2.303R\dfrac{\Delta S^\circ}{2.303R},\ -\dfrac{\Delta H^\circ}{2.303R}

  • D

    ΔH2.303R, ΔS2.303R-\dfrac{\Delta H^\circ}{2.303R},\ \dfrac{\Delta S^\circ}{2.303R}

Answer

Correct answer:C

Step-by-step solution

Standard Method

Given: The graph is between log10K\log_{10}K and 1T\frac{1}{T}.

Find: The intercept and slope of the straight line.

Concept: Whenever you see logK\log K vs 1/T1/T, immediately recall the Van’t Hoff equation.

From thermodynamics, the Van’t Hoff equation is:

lnK=ΔHRT+ΔSR\ln K = -\frac{\Delta H^\circ}{RT} + \frac{\Delta S^\circ}{R}

Converting natural logarithm to base 1010:

log10K=ΔH2.303R1T+ΔS2.303R\log_{10}K = -\frac{\Delta H^\circ}{2.303R}\cdot\frac{1}{T} + \frac{\Delta S^\circ}{2.303R}

Comparing with the straight line form y=mx+cy = mx + c:

slope=ΔH2.303R\text{slope} = -\frac{\Delta H^\circ}{2.303R} intercept=ΔS2.303R\text{intercept} = \frac{\Delta S^\circ}{2.303R}

Therefore, the intercept is ΔS2.303R\frac{\Delta S^\circ}{2.303R} and the slope is ΔH2.303R-\frac{\Delta H^\circ}{2.303R}. The correct option is C.

Straight-Line Comparison Trick

Given: log10K\log_{10}K is plotted against 1T\frac{1}{T}.

Find: Intercept and slope.

Write the Van’t Hoff equation directly in the form of a straight line:

log10K=(ΔH2.303R)1T+ΔS2.303R\log_{10}K = \left(-\frac{\Delta H^\circ}{2.303R}\right)\frac{1}{T} + \frac{\Delta S^\circ}{2.303R}

Now compare it term-by-term with y=mx+cy = mx + c, where y=log10Ky = \log_{10}K and x=1Tx = \frac{1}{T}.

So, the coefficient of 1T\frac{1}{T} is the slope, and the constant term is the intercept.

Hence, slope =ΔH2.303R= -\frac{\Delta H^\circ}{2.303R} and intercept =ΔS2.303R= \frac{\Delta S^\circ}{2.303R}. The correct option is C.

Common mistakes

  • Students often interchange slope and intercept. In y=mx+cy = mx + c, the coefficient of the variable is the slope and the constant term is the intercept. Here, 1T\frac{1}{T} is the variable, so its coefficient gives the slope.

  • A common mistake is forgetting the conversion from lnK\ln K to log10K\log_{10}K. This introduces the factor 2.3032.303. Without this factor, both slope and intercept become incorrect.

  • Some students miss the negative sign in front of ΔH\Delta H^\circ. In the Van’t Hoff equation, the slope is negative, so writing it as positive changes the correct option.

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