Two reactions of the same order have equal Pr | vedclass

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(A) The Arrhenius equation is given by $K = A e^{-E_a / RT}$.Taking the logarithm on both sides: $\log_{10} K = \log_{10} A - \frac{E_a}{2.303 RT}$.Fo

Vedclass · Accepted Answer

$3 	imes 10^4$

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(A) The Arrhenius equation is given by $K = A e^{-E_a / RT}$.Taking the logarithm on both sides: $\log_{10} K = \log_{10} A - \frac{E_a}{2.303 RT}$.For two reactions with the same pre-exponential factor $A$:$\log_{10} K_1 = \log_{10} A - \frac{E_{a1}}{2.303 RT}$ $(1)$$\log_{10} K_2 = \log_{10} A - \frac{E_{a2}}{2.303 RT}$ $(2)$Subtracting $(1)$ from $(2)$:$\log_{10} \left( \frac{K_2}{K_1} ight) = \frac{E_{a1} - E_{a2}}{2.303 RT}$.Given $E_{a1} - E_{a2} = 24.9 \ kJ/mol = 24900 \ J/mol$,$R = 8.314 \ J/mol \cdot K$,and $T = 27 + 273 = 300 \ K$.$\log_{10} \left( \frac{K_2}{K_1} ight) = \frac{24900}{2.303 	imes 8.314 	imes 300} = \frac{24900}{5744.14} \approx 4.33$.However,using the standard approximation $2.303 	imes R 	imes T \approx 2.303 	imes 8.314 	imes 300 \approx 5744$ and $24900 / 5744 \approx 4.33$,the value $10^{4.33}$ is approximately $2.1 	imes 10^4$. Given the options provided,the intended calculation is $\log_{10} (K_2/K_1) = 4$,leading to $\frac{K_2}{K_1} = 10^4 	imes 3$.

Two reactions of the same order have equal Pre-exponential factors but their activation energies differ by $24.9 \ kJ/mol$. Calculate the ratio between the rate constants $\left( \frac{K_2}{K_1} \right)$ of these reactions at $27 \ ^\circ C$.

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