Dynamic Redox Induced Localized Charge Accumulation Accelerating Proton Exchange Membrane Electrolysis

B Bin Chang Y Yuanfu Ren (Center for Renewable Energy and Storage Technologies (CREST), Physical Science and Engineering Division) N Nan Mu S Shouwei Zuo (Center for Renewable Energy and Storage Technologies (CREST), Physical Science and Engineering Division) C Chen Zou W Wei Zhou L Linrui Wen (State Key Laboratory for Physical Chemistry of Solid Surfaces Collaborative Innovation Center of Chemistry for Energy Materials and College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 P. R. China) H Huabing Tao W Weijia Zhou Z Zhiping Lai (Center of Excellence for Renewable Energy and Storage Technologies (CREST), Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.) Y Yoji Kobayashi (KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia) H Huabin Zhang (Center of Excellence for Renewable Energy and Storage Technologies (CREST), Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.)

Abstract

AbstractThe sluggish anodic oxygen evolution reaction (OER) in proton exchange membrane (PEM) electrolysis necessitates applied bias to facilitate electron transfer as well as bond cleavage and formation. Traditional electrocatalysis focuses on analyzing the effects of electron transfer, while the role of charge accumulation induced by the applied overpotential has not been thoroughly investigated. To explore the influence mechanism of bias‐driven charge accumulation, capacitive Mn is incorporated into IrO2 to regulate the local electronic structure and the adsorption behavior. The applied bias triggers dynamic redox reactions at the active sites, which introduce local charge accumulation on the surface of electrocatalyst. Under bias, Mn oxidation induced a noticeable pseudocapacitance in the pre‐OER region, promoting the OER kinetics of iridium sites. Meanwhile, the increased oxygen vacancy formation energy further prevents the lattice oxygen activation. The PEM electrolyzer, equipped with optimal materials as an anode, operates at a low driving voltage of 1.637 V under 2.0 A cm−2, maintaining stable performance for over 800 h with a low degradation rate (19.4 µV h−1). This work provides insights into the performance of metal oxide catalysts in acidic environments and offers forward‐looking strategies for enhancing the catalytic performance through dynamic redox induced capacitive behavior.

Article Details

Volume / Issue Vol. 37, Issue 7
Published February 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

B

Bin Chang

Y

Yuanfu Ren

Center for Renewable Energy and Storage Technologies (CREST), Physical Science and Engineering Division

N

Nan Mu

S

Shouwei Zuo

Center for Renewable Energy and Storage Technologies (CREST), Physical Science and Engineering Division

C

Chen Zou

W

Wei Zhou

L

Linrui Wen

State Key Laboratory for Physical Chemistry of Solid Surfaces Collaborative Innovation Center of Chemistry for Energy Materials and College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 P. R. China

H

Huabing Tao

W

Weijia Zhou

Z

Zhiping Lai

Center of Excellence for Renewable Energy and Storage Technologies (CREST), Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.

Y

Yoji Kobayashi

KAUST Catalysis Center (KCC) Physical Science and Engineering Division King Abdullah University of Science and Technology (KAUST) Thuwal 23955‐6900 Saudi Arabia

H

Huabin Zhang

Center of Excellence for Renewable Energy and Storage Technologies (CREST), Division of Physical Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, Kingdom of Saudi Arabia.