Thermodynamics MCQs With Answers – Part 5 (Class 11 Chemistry)
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Thermodynamics MCQs with Answers – Part 5 (Class 11 Chemistry)

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411. A liquid vaporizes reversibly at its boiling point. If \(\Delta H_{\text{vap}}=40.0\,\text{kJ mol}^{-1}\) and \(T_b=400\,\text{K}\), the entropy of vaporization is
ⓐ. \(-100\,\text{J mol}^{-1}\text{K}^{-1}\)
ⓑ. \(+10\,\text{J mol}^{-1}\text{K}^{-1}\)
ⓒ. \(+100\,\text{J mol}^{-1}\text{K}^{-1}\)
ⓓ. \(+16000\,\text{J mol}^{-1}\text{K}^{-1}\)
412. A reaction has \(\Delta H^\circ=-80\,\text{kJ mol}^{-1}\) and \(\Delta S^\circ=-160\,\text{J mol}^{-1}\text{K}^{-1}\). The temperature at which \(\Delta G^\circ=0\) is
ⓐ. \(200\,\text{K}\)
ⓑ. \(500\,\text{K}\)
ⓒ. \(800\,\text{K}\)
ⓓ. \(12800\,\text{K}\)
413. A reaction has the following standard data at \(298\,\text{K}\): \(\Delta H^\circ=-120\,\text{kJ mol}^{-1}\) and \(\Delta S^\circ=-300\,\text{J mol}^{-1}\text{K}^{-1}\). Its \(\Delta G^\circ\) and spontaneity under standard conditions are closest to
ⓐ. \(-209.4\,\text{kJ mol}^{-1}\), spontaneous
ⓑ. \(+30.6\,\text{kJ mol}^{-1}\), non-spontaneous
ⓒ. \(+209.4\,\text{kJ mol}^{-1}\), non-spontaneous
ⓓ. \(-30.6\,\text{kJ mol}^{-1}\), spontaneous
414. The following signs are reported for four reactions.
Reaction\(\Delta H^\circ\)\(\Delta S^\circ\)Temperature favourability
P\(-\)\(+\)all \(T\)
Q\(+\)\(+\)high \(T\)
R\(-\)\(-\)low \(T\)
S\(+\)\(-\)all \(T\)
The row with the wrong temperature favourability is
ⓐ. P
ⓑ. Q
ⓒ. R
ⓓ. S
415. A reaction has \(\Delta G^\circ=-5.0\,\text{kJ mol}^{-1}\) at \(300\,\text{K}\). If the reaction is multiplied by \(2\), the corresponding equilibrium constant becomes
ⓐ. \(\sqrt{K}\)
ⓑ. \(-K\)
ⓒ. \(K^2\)
ⓓ. \(\frac{1}{K}\)
416. A reaction has \(K=9\) at a fixed temperature. If the same reaction equation is divided by \(2\), the new equilibrium constant is
ⓐ. \(9\)
ⓑ. \(81\)
ⓒ. \(\frac{1}{9}\)
ⓓ. \(3\)
417. A student writes, “Because \(\Delta G^\circ=-RT\ln K\), a larger \(K\) always makes \(\Delta G^\circ\) more positive.” The correction is that
ⓐ. \(K\) increase makes \(\Delta G^\circ\) more negative
ⓑ. \(K\) has no logarithm in the relation
ⓒ. \(R\) is negative, so the sign changes
ⓓ. \(\Delta G^\circ\) is positive for every value of \(K\)
418. A reaction mixture has \(Q=0.01\), and the equilibrium constant is \(K=100\) at the same temperature. The forward reaction is strongly favoured because
ⓐ. \(Q\) is much smaller than \(K\)
ⓑ. \(Q\) is smaller than \(1\), so equilibrium is impossible
ⓒ. \(K\) must be converted into \(\text{kJ mol}^{-1}\)
ⓓ. \(Q\) and \(K\) must be added before comparison
419. A reaction has \(\Delta G=0\) at its current composition but \(\Delta G^\circ=+7.5\,\text{kJ mol}^{-1}\). The equilibrium constant at that temperature must be
ⓐ. equal to \(1\)
ⓑ. less than \(1\)
ⓒ. greater than \(1\)
ⓓ. negative
420. A final comparison of criteria is given below.
CriterionMeaning under suitable conditions
P. \(\Delta S_{\text{universe}} \gt 0\)spontaneous process
Q. \(\Delta G \lt 0\) at constant \(T,p\)forward process favoured
R. \(\Delta G=0\) at constant \(T,p\)equilibrium
S. \(Q=K\)equilibrium composition
The correctly stated criteria are
ⓐ. P and Q only
ⓑ. Q and R only
ⓒ. P, Q, R, and S
ⓓ. P, Q, and R only
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