Selective Electrochemical Production of Ethylene from Bicarbonate Solution

B Behnam Nourmohammadi Khiarak (Department of Chemical Engineering Queen's University Kingston ON K7L 3N6 Canada) G Gelson T. S. T. da Silva (Department of Chemical Engineering Queen's University Kingston ON K7L 3N6 Canada) J Jackson Crane C Colin P. O'Brien (CERT Systems Inc. Toronto Ontario M6N 2J1 Canada) M Michael R. Pepe (CERT Systems Inc. Toronto Ontario M6N 2J1 Canada) C Christine M. Gabardo V Viktoria Golovanova (ICFO-Institut de Ciències Fotòniques, The Barcelona Institute of Science and Technology) F F. Pelayo García de Arquer (ICFO - Institut de Ciències Fotòniques, the Barcelona Institute of Science and Technology) C Cao‐Thang Dinh (Department of Chemical Engineering Queen's University Kingston ON K7L 3N6 Canada)

Abstract

Abstract Carbon dioxide (CO 2 ) electroreduction directly from a reactive carbon solution (e.g., (bi)carbonate) provides a promising approach for integrating CO 2 capture and conversion. Compared to CO 2 conversion in gas‐fed systems, this system typically suffers from low Faradaic efficiency (FE), especially for multicarbon (C 2+ ) products. Here, we report an engineered material structuring to selectively produce C 2+ products directly from a N 2 ‐saturated bicarbonate solution. Multiphysics modeling studies reveal the critical role of local current density distribution and the spatio‐selective evolution of C 2+ products, which is favored in thinner catalysts (240 µm thickness). By jointly tailoring catalyst configuration and mass transport in bicarbonate electroreduction, adjusting the thickness, porosity, and surface oxidation of copper (Cu) mesh catalysts, as well as catholyte composition, we achieved a maximum C 2 H 4 FE of 39% and total C 2+ FE over 55% at 150 mA cm −2 with a 240 µm thick Cu mesh. The system is also stable for over 160 h at 100 mA cm −2 with maintained C 2 H 4 FE over 20%. Our electrolysis system converts bicarbonate to C 2+ with over 90% CO 2 utilization efficiency, reducing regeneration and separation costs. Optimizing catalyst pore structure, and copper surface oxide is a key to maximizing C 2 H 4 production from bicarbonate solutions.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

B

Behnam Nourmohammadi Khiarak

Department of Chemical Engineering Queen's University Kingston ON K7L 3N6 Canada

G

Gelson T. S. T. da Silva

Department of Chemical Engineering Queen's University Kingston ON K7L 3N6 Canada

J

Jackson Crane

C

Colin P. O'Brien

CERT Systems Inc. Toronto Ontario M6N 2J1 Canada

M

Michael R. Pepe

CERT Systems Inc. Toronto Ontario M6N 2J1 Canada

C

Christine M. Gabardo

V

Viktoria Golovanova

ICFO-Institut de Ciències Fotòniques, The Barcelona Institute of Science and Technology

F

F. Pelayo García de Arquer

ICFO - Institut de Ciències Fotòniques, the Barcelona Institute of Science and Technology

C

Cao‐Thang Dinh

Department of Chemical Engineering Queen's University Kingston ON K7L 3N6 Canada