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Question

According to Van't Hoff equation, which of the following statement is correct regarding the plot of lnKeq v/s 1T ?

A
For an endothermic reaction, the slope is ΔSRT
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B
For an endothermic reaction, the slope is ΔHR
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C
For an exothermic reaction, the slope is ΔSR
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D
For an exothermic reaction, the slope is ΔHRT
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Solution

The correct option is B For an endothermic reaction, the slope is ΔHR
We know that,

ΔG=RT ln(Keq)

ΔG=ΔHTΔS

Using above two equations,
RT ln(Keq)=ΔHTΔS

lnKeq=ΔHRT+ΔSR

Comparing it with,
y= mx +c

we get,
Graph between lnKeq v/s 1T has a slope of ΔHR and an intercept of ΔSR
R is the universal gas constant having a positive value.
For an endothermic reaction, ΔH>0 and for an exothermic rection ΔH<0
Therefore,
Slope=ΔHR<0 for endothermic reaction.
Slope=ΔHR>0 for exothermic reaction.
Option B is correct.


Theory:

Case 1 : plot of lnKvs1T for endothermic reaction


Case 2 : plot of lnKvs1T for exothermic reaction


We can clearly see from above plots that in case 1 plot of lnK vs 1T for endothermic,ΔHo is positive and reaction slope is negative with a positive intercept.

For case 2 plot of lnKvs1T for exothermic reaction, ΔHo is negative and has a positive slope with a positive intercept.


If at temperature T1, equilibrium constant is K1 and at temperature T2, it is
K2 then,
ln(K1)=ΔHoRT1+ΔSoR....................(1)
ln(K2)=ΔHoRT2+ΔSoR...................(2)


Equation (1)(2)
ln(K1K2)=ΔHoR[1T21T1]

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