The kinetic compensation effect (KCE), observed in many fields of science, is
the systematic variation in the apparent magnitudes of the Arrhenius parameters
Ea, the energy of activation, and ν, the preexponential factor, as a
response to perturbations. If, in a series of closely related activated
processes, these parameters exhibit a strong linear correlation, it is expected
that an isokinetic relation will occur, then the rates k become the same at a
common compensation temperature Tc. The reality of these two phenomena
continues to be debated as they have not been explicitly demonstrated and their
physical origins remain poorly understood. Using kinetic Monte Carlo
simulations on a model interface, we explore how site and adsorbate
interactions influence the Arrhenius parameters during a typical desorption
process. We find that their transient variations result in a net partial
compensation, due to the variations in the prefactor not being large enough to
completely offset those in Ea, both in plots that exhibit a high degree of
linearity and in curved non-Arrhenius plots. In addition, the observed
isokinetic relation arises due to a transition to a non-interacting regime, and
not due to compensation between Ea and lnν. We expect our results to
provide a deeper insight into the microscopic events that originate
compensation effects and isokinetic relations in our system, and in other
fields where these effects have been reported.Comment: 11 pages, 17 figures, 3 table