材料科学
催化作用
等离子体子
合金
吸附
电子转移
光催化
化学工程
氧化还原
纳米技术
贵金属
纳米颗粒
表面等离子共振
选择性
可见光谱
氨生产
半导体
金属
氨
密度泛函理论
能量转换效率
光化学
无机化学
多相催化
合理设计
能量转换
作者
Lin Wei,Huijuan Cao,Xiulin Fan,Jie Yang,Zhongju Ye,Lehui Xiao
标识
DOI:10.1002/advs.202521887
摘要
ABSTRACT Photocatalysis, leveraging the redox capabilities of photocatalysts under light irradiation, emerges as a promising approach for clean energy conversion and pollution control. In this study, we engineered Au nanobipyramids (Au NBPs) with trace amounts of AuPt alloy to enhance their photocatalytic efficiency for selective ammonia synthesis. By modulating the reduction kinetics and precursor ratios, we synthesized three distinct Pt configurations: dense Pt layers (Au NBPs@Pt d ), sparse Pt clusters (Au NBPs@Pt s ), and trace AuPt alloy (Au NBPs@Au/Pt alloy ). Among them, Au NBPs@Au/Pt alloy exhibited superior performance in photoelectrocatalytic nitrite‐to‐ammonia conversion, achieving a 10‐fold increase in ammonia production compared to Au NBPs and a 1.26‐fold enhancement under illumination vs. dark conditions. Multimodal characterization revealed that the ultra‐low AuPt alloy loading preserved the intrinsic localized surface plasmon resonance (LSPR) properties of Au NBPs while enhancing hot carrier generation and interfacial electron transfer efficiency. Density functional theory (DFT) calculations further confirmed that AuPt alloying optimized reaction free energy profiles by reducing adsorption barriers for key intermediates. This work not only advances the rational design of plasmonic catalysts but also demonstrates the potential of trace metal alloying for achieving high selectivity in visible‐light‐driven catalytic reactions, holding significant implications for sustainable energy conversion.
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