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Q.(a) Write the Arrhenius equation relating the rate constant of a reaction and temperature, and indicate the terms used in it.

(b) How can the activation energy be determined from the graph of the Arrhenius equation?
Tripura TbseHigher Secondary (+2 Stage) Examination 2024Subjective· 3mImportance★★★★★
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The Arrhenius equation links the rate constant to temperature and activation energy; taking logs turns it into a straight-line (Arrhenius plot) whose slope directly yields the activation energy.

  1. Arrhenius equation: k = A e^(−Ea/RT) where k = rate constant, A = Arrhenius (pre-exponential/frequency) factor, e = base of natural log, Ea = activation energy, R = universal gas constant, T = absolute temperature (kelvin).
  2. Taking natural log of both sides: ln k = ln A − Ea/(RT) or, converting to log base 10: log k = log A − Ea/(2.303 R T) This has the form of a straight line y = c + mx, if we plot log k (y-axis) against 1/T (x-axis):
  • Slope, m = −Ea/(2.303R) …

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