光化学
脱质子化
电解
脱氢
化学
表面等离子共振
催化作用
拉曼光谱
密度泛函理论
材料科学
动力学
化学工程
纳米颗粒
纳米技术
物理化学
电极
电解质
计算化学
有机化学
物理
工程类
离子
光学
量子力学
作者
Nur Aqlili Riana Che Mohamad,Kyunghee Chae,Qiang Zhou,Wen‐Tse Huang,H. J. Lee,Jaehyun Son,Jooho Moon,Yunfei Bu,Feng Gong,Ru‐Shi Liu,Jeongwon Kim,Dong Ha Kim
标识
DOI:10.1002/advs.202507147
摘要
Abstract Regulating the orientation and dynamics of interfacial water is essential for optimizing electrocatalytic reactions, yet it remains challenging due to its intrinsic disorder. Here, it is demonstrated that localized surface plasmon resonance (LSPR) on an Ir single‐atom Au catalyst actively restructures the hydrogen‐bond (HB) network, accelerating ammonia oxidation reaction kinetics. In situ Raman spectroscopy and density functional theory calculations reveal that plasmonic excitation shifts the HB network toward a more flexible configuration, favoring the formation of three‐coordinated hydrogen‐bonded water (3HB·H 2 O) while suppressing cation‐associated species (K + ·H 2 O). This transformation enhances the dehydrogenation process and stabilizes reaction intermediates, leading to a 28% increase in NH 3 oxidation kinetics. Operando X‐ray absorption spectroscopy further confirms that LSPR‐driven polarization at the Ir active site compresses the Ir─O bond from 1.73 to ≈1.58 Å by generating electron vacancies, thereby accelerating deprotonation with * OH during oxidative electrolysis. Extending this principle to an LED‐driven plasmon‐assisted symmetric wastewater electrolyzer, achieving a 40‐fold current enhancement and 94% ammonia removal efficiency over 120 h at 1 V under landfill leachate‐like conditions.
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