Papers › A microscopic perspective on heterogeneous catalysis

A microscopic perspective on heterogeneous catalysis

29 Dec 2018arXiv:1812.11398links table onlyarchive 2025-07-28

Miguel Angel Gosalvez, Joseba Alberdi-Rodriguez

The archive published only this paper's code-link row. Authors, date and abstract are from arXiv's metadata (CC0), read from the Kaggle arXiv metadata snapshot of 2026-09-12 where its title matched the archive's; the title is the archive's.

A general formalism is presented to describe the turnover frequency (TOF) during heterogeneous catalysis beyond a mean field treatment. For every elementary reaction we define its multiplicity as the number of times the reaction can be performed in the current configuration of the catalyst surface, divided by the number of active sites. It is shown that any change in the multiplicity with temperature can be directly understood as a modification in configurational entropy. Based on this, we determine the probability of observing any particular elementary reaction, leading to a procedure for identifying any Rate Controlling Step (RCS) as well as the Rate Determining Step (RDS), if it exists. Furthermore, it is shown that such probabilities provide a thorough description of the overall catalytic activity, enabling a deep understanding of the relative importance of every elementary reaction. Most importantly, we formulate a simple expression to describe accurately the apparent activation energy of the TOF, valid even when adsorbate-adsorbate interactions are included, and compare it to previous, approximate expressions, including the traditional Temkin formula for typical reaction mechanisms (Langmuir-Hinshelwood, Eley-Rideal, etc...). To illustrate the validity of our formalism beyond the mean field domain we present Kinetic Monte Carlo simulations for two widely-studied and industrially-relevant catalytic reactions, namely, the oxidation of CO on RuO₂(110) and the selective oxidation of NH₃ on the same catalyst.

PaperPDFCode

Code

dipc-cc/Morphokinetics mentioned on GitHub report

Repository list and official/mentioned flags are the archive's, frozen 2025-07-28. Reachability, where shown, is from one Syntology probe window (2026-09-16 to 2026-09-18); repositories not probed show nothing. GitHub stars are not tracked.

Code Syntology ran Syntology

Not run by Syntology. Nothing on this page verifies that the listed code works.

Results from the paper archive 2025-07-28

No leaderboard rows for this paper in the archive.

Report a problem or propose a change · a person checks every report against the paper or source before anything changes; decisions are listed on /corrections