Going Beyond Silver in Ethylene Epoxidation with First-Principles Catalyst Screening
Artikel i vetenskaplig tidskrift, 2023

Ethylene epoxidation is industrially and commercially one of the most important selective oxidations. Silver catalysts have been state-of-the-art for decades, their efficiency steadily improving with empirical discoveries of dopants and co-catalysts. Herein, we perform a computational screening of the metals in the periodic table, identify prospective superior catalysts and experimentally demonstrate that Ag/CuPb, Ag/CuCd and Ag/CuTl outperform the pure-Ag catalysts, while they still confer an easily scalable synthesis protocol. Furthermore, we show that to harness the potential of computationally-led discovery of catalysts fully, it is essential to include the relevant in situ conditions e.g., surface oxidation, parasitic side reactions and ethylene epoxide decomposition, as neglecting such effects leads to erroneous predictions. We combine ab initio calculations, scaling relations, and rigorous reactor microkinetic modelling, which goes beyond conventional simplified steady-state or rate-determining modelling on immutable catalyst surfaces. The modelling insights have enabled us to both synthesise novel catalysts and theoretically understand experimental findings, thus, bridging the gap between first-principles simulations and industrial applications. We show that the computational catalyst design can be easily extended to include larger reaction networks and other effects, such as surface oxidations. The feasibility was confirmed by experimental agreement.

DFT

Experimental Validation

Ethylene Epoxidation

Modelling

Catalyst Screening

Författare

Matej Hus

Univerza v Novi Gorici

Chalmers, Fysik, Kemisk fysik

Zveza za tehniško kulturo Slovenije

Zavod za Varstvo Kulturne Dediščine Slovenije

Kemijski Inštitut

M. Grilc

Univerza v Novi Gorici

Kemijski Inštitut

Janvit Teržan

Kemijski Inštitut

Sašo Gyergyek

Institut Jožef Stefan

B. Likozar

Fakulteta za tehnologijo polimerov

Kemijski Inštitut

Anders Hellman

Chalmers, Fysik, Kemisk fysik

Angewandte Chemie - International Edition

1433-7851 (ISSN) 1521-3773 (eISSN)

Vol. 62 31 e202305804

Ämneskategorier

Fysikalisk kemi

Annan fysik

Teoretisk kemi

DOI

10.1002/anie.202305804

PubMed

37226934

Mer information

Senast uppdaterat

2024-03-07