化学
光电流
纳米颗粒
载流子
等离子体子
热电子
人口
光催化
超快激光光谱学
析氧
分解水
光化学
热点(计算机编程)
表面等离子共振
飞秒
氢
表面等离子体子
纳米技术
光电子学
可见光谱
氧气
化学工程
阳极氧化
催化作用
重组
表面光电压
电子
化学物理
载流子寿命
吸收(声学)
谱线
贵金属
制氢
表面电荷
光电化学
纳米结构
等离子纳米粒子
作者
Hyewon Park,Seung‐Hyun Chun,Jeong Hoon Lee,Joo‐Hiuk Son,Sookyung Kim,Jungkweon Choi,Hyotcherl Ihee,Hyosun Lee,Jeong Young Park
摘要
Photoinduced hot carriers generated from the decay of surface plasmons in noble metals play a decisive role in producing green hydrogen gas through the photoelectrochemical (PEC) water splitting reaction, a process driven by visible light absorption. To optimize the utilization of these hot carriers, we employed a plasmonic antenna-reactor model based on core-shell structured Au@Pd nanoparticles (NPs) with an ultrathin Pd shell. In this study, we demonstrate that TiO2 nanotube arrays (TNAs) decorated with Au@Pd NPs exhibit superior performance with the Pd shell serving as a catalytic reactor that efficiently extracts hot carriers from the plasmonic Au antenna. The photocatalytic performance in PEC measurements increased with higher Pd coverage, and Au70@Pd30/TNAs exhibited a 2.2-fold higher photocurrent compared with bare Au/TNAs. The enhanced oxygen evolution reaction (OER) activity observed for Au70@Pd30/TNAs is attributed to the higher population of hot holes on the surface of Au@Pd NPs, which enhances the oxidation capability for interactions with electrolytes. Femtosecond transient absorption (fs-TA) spectra of Au@Pd NPs revealed a shorter lifetime of hot electrons through electron-phonon (e-p) scattering in Au70@Pd30 NPs compared to Au NPs, indicating suppressed charge recombination and increased hot hole population on the surface. Therefore, this study suggests that the plasmonic antenna-reactor model, critically influenced by hot carrier dynamics, provides a promising framework for efficient photoelectrocatalytic systems.
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