Engineering an Electron Pump by Asymmetric Light‐Responsive Catalyst for Solar‐Driven Syngas Production

W Wang Si‐ma (Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China) J Jiaming Ma Z Zhengwu Yang (Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China) K Kun Chen J Juncheng Hong (Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China) H Haoyu Yan C Chaoping Xu Y Yuming Gao (Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China) D Dawei Tang B Bo Jiang (Chinese Education Ministry Key Lab and Joint International Research Lab of Resource Chemistry, Shanghai Frontiers Science Center of Biomimetic Catalysis, College of Chemistry and Materials Science)

Abstract

ABSTRACT Solar‐driven dry reforming of methane (DRM) offers an energy‐saving and environmentally sustainable route for syngas production. Nevertheless, this technology still suffers from insufficient production rates, especially under high gas hourly space velocity (GHSV). In this work, we design an electron pump catalyst with an asymmetric light‐responsive architecture, comprising Ru nanoclusters and Ni single atoms, to boost syngas production rates. Under illumination without external heating, Ru ac ‐Ni sa /NC achieves a remarkable syngas production of 4.70 mol·g cat −1 ·h −1 at 500°C and a GHSV of 288 000 h − 1 , outperforming state‐of‐the‐art benchmarks by five times, and maintained excellent stability over 1500 min. Experimental and computational studies disclose that the asymmetric architecture enables directional electron transfer and suppresses electron‐hole recombination, as an electron pump, creating electron‐enriched Ru sites and electron‐deficient Ni sites. This interfacial electron configuration furnishes favorable active sites for reactant activation and * CH 3 O formation, thereby improving DRM kinetics. This work unlocks a design strategy for catalysts in solar‐driven reactions and provides a mechanistic lever for enhancing electron‐transfer efficiency and reactant activation.

Article Details

Volume / Issue Vol. 38, Issue 21
Published April 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (10)

W

Wang Si‐ma

Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China

J

Jiaming Ma

Z

Zhengwu Yang

Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China

K

Kun Chen

J

Juncheng Hong

Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China

H

Haoyu Yan

C

Chaoping Xu

Y

Yuming Gao

Key Laboratory of Ocean Energy Utilization and Energy Conservation of Ministry of Education Dalian University of Technology Dalian China

D

Dawei Tang

B

Bo Jiang

Chinese Education Ministry Key Lab and Joint International Research Lab of Resource Chemistry, Shanghai Frontiers Science Center of Biomimetic Catalysis, College of Chemistry and Materials Science