TS EAMCET · Chemistry · Chemical Kinetics
For a reversible reaction \(A \rightleftharpoons B\), pre-exponential factor is same for both the forward and backward reactions and has value of \(20 \mathrm{~S}^{-1}\). If the enthalpy change along the forward reaction is \(-41.5 \mathrm{~kJ} / \mathrm{mol}\), the value of equilibrium constant at \(500 \mathrm{~K}\) is
- A \(e^{10}\)
- B \(e^9\)
- C \(e^8\)
- D \(e^7\)
Answer & Solution
Correct Answer
(A) \(e^{10}\)
Step-by-step Solution
Detailed explanation
For the forward reaction of \(A \rightleftharpoons B\), \(\begin{aligned} \ln K & =-\frac{\Delta H}{R T} \quad \text { [van't Hoff isotherm equation] } \\ K & =e^{-\Delta H / R T} \\ & =e^{\frac{-(-41.5)}{8.314 \times 10^{-3} \times 500}}=e^{9.983} \simeq e^{10} \end{aligned}\)…
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