A first order reaction is 50Given - log 2 - 0-3010- log 4 - 0-6021- R - 8-314 JK-1 mol-1

K = 0.693/t_1/2, So K_1 = 0.693/40 and K_2 = 0.693/20 log K_2/K_1 = E_a/2.303 R [ 1/T_1 1/T_2 ] log 0.693/20/0.693/40 = E_a/2.303 × 8.314 [ 1/300 1/320 ...

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Standard VII

Chemistry

Activation Energy

A first order...

Question

A first order reaction is 50% completed in 40 minutes at 300 K and in 20 minutes at 320 K. Calculate the activation energy of the reaction.

(Given : log 2 = 0.3010, log 4 = 0.6021, R = 8.314 $J K^{- 1} m o l^{- 1})$

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Solution

K = $\frac{0.693}{t_{\frac{1}{2}}},$ So

$K_{1} = \frac{0.693}{40}$ and $K_{2} = \frac{0.693}{20}$

$l o g \frac{K_{2}}{K_{1}} = \frac{E_{a}}{2.303 R} [\frac{1}{T_{1}} - \frac{1}{T_{2}}]$

$l o g \frac{\frac{0.693}{20}}{\frac{0.693}{40}} = \frac{E_{a}}{2.303 \times 8.314} [\frac{1}{300} - \frac{1}{320}]$

$l o g 2 = \frac{E_{a}}{19.24} [\frac{20}{320 \times 300}]$

0.3010 = $\frac{E_{a}}{19.24} \times \frac{1}{4800}$

$E_{a} = 0.3010 \times 19.24 \times 4800$

=27663.8 J $m o l^{- 1}$ = 27.7 kJ/mol

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Q. A first order reaction is 50% completed in 40 minutes at 300 K and in 20 minutes at 320 K. Calculate the activation energy of the reaction.

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A first order reaction is 50% completed in 40 minutes at 300 K and in 20 minutes at 320 K. Calculate the activation energy of the reaction. (Given : log 2 = 0.3010, log 4 = 0.6021, R = 8.314 JK−1 mol−1)

K = 0.693t12, So K1=0.69340 and K2=0.69320 logK2K1=Ea2.303 R[1T1−1T2] log 0.693200.69340=Ea2.303×8.314[1300−1320] log 2=Ea19.24[20320×300] 0.3010 = Ea19.24×14800 Ea=0.3010×19.24×4800 =27663.8 J mol−1 = 27.7 kJ/mol

A first order reaction is 50% completed in 40 minutes at 300 K and in 20 minutes at 320 K. Calculate the activation energy of the reaction.

(Given : log 2 = 0.3010, log 4 = 0.6021, R = 8.314 $J K^{- 1} m o l^{- 1})$