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Spin-polarized Acidic Water Electrolysis with Antenna-Reactor Plasmonic Electrocatalysts

Authors
Chae, KyungheeLee, HeejunHuang, Wen-TseSon, JaehyunPavageau, BertrandKim, Tae-HyunLee, Seung-eunKim, JeongwonMoon, JoohoLiu, Ru-ShiBang, JoonhoKim, Dong Ha
Issue Date
Oct-2025
Publisher
WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
Keywords
CISS effect; plasmonic effect; single atom catalysis; stability; water splitting
Citation
Advanced Materials, v.37, no.39
Indexed
SCIE
SCOPUS
Journal Title
Advanced Materials
Volume
37
Number
39
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/79397
DOI
10.1002/adma.202507658
ISSN
0935-9648
1521-4095
Abstract
Water electrolysis, driven by renewable electricity, offers a sustainable path for hydrogen production. However, efficient bifunctional electrocatalysts are needed to overcome the high overpotentials of both the oxygen evolution reaction and hydrogen evolution reaction. To address this, a novel catalyst system is developed integrating plasmonic nanoreactors with chirality-induced spin selectivity. In this system, chiral Au nanoparticles act as antennae, while single-atom iridium serves as the catalytic reactor, achieving a 3.5 fold increase in reaction kinetics (at 1.57 V vs RHE) compared to commercial IrO2 catalysts and enhancing durability by over 4.8 times relative to conventional Pt/C || IrO2 systems. Density functional theory and operando X-ray absorption spectroscopy reveal that plasmon-driven spin alignment polarizes the Ir atom, significantly enhancing stability (>480 h at 100 mA cm(-2)) under acidic conditions. This work represents a major advance in spin polarization for plasmonic electrocatalysis, offering a new route to sustainable energy solutions.
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