Solution Plasma Synthesis of High‐Entropy Alloy Nanoparticles with Self‐Limiting Oxidation for Photothermal CO <sub>2</sub> Reduction

D Dashuai Li (State Key Laboratory of Integrated Optoelectronics Key Laboratory of UV‐Emitting Materials and Technology of Chinese Ministry of Education Department of Physics Northeast Normal University 5268 Renmin Street Changchun 130024 China) Q Qi Wu (Department of Pharmaceutical Sciences, University of Michigan) C Changhua Wang (State Key Laboratory of Integrated Optoelectronics Key Laboratory of UV‐Emitting Materials and Technology of Chinese Ministry of Education Department of Physics Northeast Normal University 5268 Renmin Street Changchun 130024 China) Z Zhehao Sun (Research School of Chemistry) Y Yingying Li Z Zongyou Yin (Research School of Chemistry) Y Yichun Liu X Xintong Zhang (National Key Laboratory for Germplasm Innovation and Utilization of Horticultural Crops, College of Horticulture and Forestry Sciences, Huazhong Agricultural University)

Abstract

Abstract Transition metal high‐entropy alloys (HEAs) demonstrate exceptional catalytic performance due to their structural complexity, featuring rich local atomic configurations, tunable electronic structures, and abundant active sites. However, this structural versatility poses both thermodynamic and kinetic challenges to conventional wet‐chemical synthesis routes. Herein, we develop a novel solution plasma strategy that enables the direct synthesis of HEA catalysts in aqueous media. Through the FeCoNiCrMn electrode discharge in pure water, uniform HEAs nanoparticles (≈200 nm) are successfully anchored onto a variety of oxide substrates. The HEAs/TiO 2 catalyst achieves a CO generation rate of 298.1 mmol/g HEAs /h, representing ca. an order‐of‐magnitude higher activity than single‐metal catalysts under both thermocatalytic and photothermal conditions. Advanced structural characterization reveals a dual‐phase core‐shell architecture consisting of a metallic alloy core and surface oxides preferentially enriched at CrMn sites. This spatially resolved structure enables cooperative catalysis, where CrMn‐rich oxide domains promote H 2 dissociation, CoNi metallic regions facilitate CO 2 reduction, and Fe sites present in mixed valence states serve as electron and oxygen transfer bridges. We further identify a self‐limiting oxidation mechanism intrinsic to plasma synthesis, which ensures charge redistribution at the metal‐oxide interfaces and synergistically enhances photothermal catalysis. This work establishes an energy‐efficient synthetic route for HEAs and elucidates structure‐function relationships critical for advancing multimetallic catalytic systems.

Article Details

Volume / Issue Vol. 38, Issue 6
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

D

Dashuai Li

State Key Laboratory of Integrated Optoelectronics Key Laboratory of UV‐Emitting Materials and Technology of Chinese Ministry of Education Department of Physics Northeast Normal University 5268 Renmin Street Changchun 130024 China

Q

Qi Wu

Department of Pharmaceutical Sciences, University of Michigan

C

Changhua Wang

State Key Laboratory of Integrated Optoelectronics Key Laboratory of UV‐Emitting Materials and Technology of Chinese Ministry of Education Department of Physics Northeast Normal University 5268 Renmin Street Changchun 130024 China

Z

Zhehao Sun

Research School of Chemistry

Y

Yingying Li

Z

Zongyou Yin

Research School of Chemistry

Y

Yichun Liu

X

Xintong Zhang

National Key Laboratory for Germplasm Innovation and Utilization of Horticultural Crops, College of Horticulture and Forestry Sciences, Huazhong Agricultural University