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Q.Explain Arrhenius equation.

Himachal HpboseHPBOSE Plus Two Board 2017Subjective· 1mImportance★★★★★
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The Arrhenius equation shows that a rate constant increases exponentially with temperature because more molecules acquire energy equal to or greater than the activation energy.

The Arrhenius equation is:

k=A e−Ea/RTk = A\,e^{-E_a/RT}

where:

  • kk = rate constant of the reaction
  • AA = pre-exponential (frequency) factor, related to the frequency of collisions with proper orientation
  • EaE_a = activation energy of the reaction
  • RR = universal gas constant
  • TT = absolute temperature (K)

The equation shows that as temperature TT increases, the exponential term e−Ea/RTe^{-E_a/RT} increases (since −Ea/RT-E_a/RT becomes less negative), so a larger fraction of reactant molecules possess energy equal to or greater than EaE_a, and the rate constant kk increases — explaining why reaction rates generally rise sharply with temperature.

Taking the natural log of both sides gives the linear form: …

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