For a reaction, given below is the graph of ln K vs 1𝑇. The activation energy for the reaction is equal to ______ Cal mol−1 (Nearest integer).(Given R = 2 Cal K−1 mol−1). - Chemistry (Theory)

प्रश्न

For a reaction, given below is the graph of ln K vs `1/T`. The activation energy for the reaction is equal to ______ Cal mol⁻¹ (Nearest integer).
(Given R = 2 Cal K⁻¹ mol⁻¹).

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उत्तर

For a reaction, given below is the graph of ln K vs `1/T`. The activation energy for the reaction is equal to 8 Cal mol⁻¹.

Explanation:

We are given a graph of ln K vs `1/T`.

From the Arrhenius equation:

`ln K = ln A - E_a/R * 1/T`

It is of the form y = mx + c

Where slope m = `- E_a/R`

We need to find activation energy (E_a) in Cal mol⁻¹, given R = 2 Cal K⁻¹mol⁻¹.

From the graph:
At `1/T` = 0, ln⁡ K = 2.
At `1/T` = 51, ln⁡ K = 0.

slope = `(0 - 20)/(5 - 0)`

= `(-20)/5`

= −4

i.e., `- E_a/R = -4`

But, E_a = 4 R

E_a = 4 × 2 = 8 Cal mol⁻¹

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पाठ 4: Chemical Kinetics - INTEGER TYPE QUESTIONS [पृष्ठ २६५]

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नूतन Chemistry Part 1 and 2 [English] Class 12 ISC

पाठ 4 Chemical Kinetics
INTEGER TYPE QUESTIONS | Q 7. | पृष्ठ २६५

For a reaction, given below is the graph of ln K vs 1𝑇. The activation energy for the reaction is equal to ______ Cal mol−1 (Nearest integer).(Given R = 2 Cal K−1 mol−1). - Chemistry (Theory)

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For a reaction, given below is the graph of ln K vs 1𝑇. The activation energy for the reaction is equal to ______ Cal mol−1 (Nearest integer).(Given R = 2 Cal K−1 mol−1). - Chemistry (Theory)

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