化学
光催化
电子转移
光化学
超短脉冲
等离子体子
电荷(物理)
化学物理
超快激光光谱学
表面等离子共振
电子
表面电荷
化学工程
动能
载流子
双金属片
纳米晶
电子供体
有效核电荷
纳米颗粒
双金属
纳米技术
作者
Xinyu Yin,Duoduo Gao,Jianjun Zhang,Hermenegildo Garcı́a,Jiaguo Yu,Huogen Yu
摘要
The localized surface plasmon resonance (LSPR) effect of precious metals plays a pivotal role in photocatalytic H2 evolution, where plasmon-generated hot electrons are efficiently injected into the photocatalytic system, profoundly modulating interfacial electron transfer dynamics. Regrettably, the specific impact of the LSPR effect of precious metals on the ultrafast interfacial charge transfer and its kinetic characteristics remains inadequately explored in photocatalystic systems. To address these knowledge gaps, Au nanoparticles are incorporated into the CdS/ReSx photocatalyst to comprehensively investigate the LSPR-induced ultrafast interfacial charge transfer, ultimately boosting photocatalytic H2 production activity. The experimental results reveal that the developed CdS/Au0.5@ReSx photocatalyst achieves a notable H2-production activity with a rate of 8.6 mmol g-1 h-1 (AQE = 35.9%), which is evidently higher than that of CdS/Au (1.8 mmol g-1 h-1) and CdS/ReSx (4.0 mmol g-1 h-1). In situ XAFS and fs-TAS characterizations confirm that the Au LSPR effect generates electron-deficient Auδ+ species and contracts Au-S bond lengths, dramatically accelerating electron transfer in the Au@ReSx cocatalyst. This plasmon-induced ultrafast charge transfer mechanism enables efficient photogenerated electron migration in the CdS/Au@ReSx system, promoting interfacial charge dynamics for exceptional photocatalytic H2 evolution performance. The findings offer a new understanding of charge transfer mechanisms enabled by LSPR effects and create a blueprint for engineering next-generation plasmonic photocatalysts.
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