光催化
等离子体子
材料科学
可见光谱
表面等离子共振
纳米颗粒
催化作用
贵金属
量子产额
分解水
纳米技术
等离子纳米粒子
制氢
光催化分解水
化学工程
金属
光化学
光电子学
化学
光学
有机化学
荧光
工程类
物理
冶金
作者
Huiqin An,Zhaotao Lv,Kun Zhang,Congying Deng,Hong Wang,Zongwei Xu,Meiri Wang,Zhen Yin
标识
DOI:10.1016/j.apsusc.2020.147934
摘要
Hydrogen production via photocatalytic water splitting would be a promising technique for the utilization of hydrogen energy and solar energy. Surface plasmon resonance (SPR) of noble metal nanoparticles (NPs), such as Au, offers a fascinating arena to develop efficient photocatalysts with superior visible light harvesting properties and excellent catalytic activities. However, the photocatalytic performance enhancement based on SPR effect is limited by the relatively small contribution of the isolated plasmonic NPs. In the present work, the [email protected]/ZnIn2S4 (ZIS) photocatalyst can be successfully constructed by the assemblies of core-shell [email protected] NPs, consisted of plasmonic Au NP surrounded by catalytic Pt NPs, on three-dimensional (3D) ZIS microsphere in consideration of collective excitation of plasmonic NPs assemblies, demonstrating extraordinary catalytic performance of hydrogen production under visible light (≥420 nm) during water splitting process. The H2 production amount and rate over [email protected]/ZIS can reach 41747 μmol g−1 and 4174.7 μmol g−1h−1 under visible light, about 10 times higher than those of ZIS, respectively. The apparent quantum yield (AQY) of [email protected]/ZIS dramatically rises to 6.23%, nearly 10 times than that of ZIS (0.62%). Hence, the assembly formation of core-shell NPs and the introduction of ZIS can significantly enhance the photocatalytic performance of plasmonic metal NPs. The experimental results and FDTD simulation confirm that the plasmonic coupling effect of [email protected] assemblies can generate much intensive electromagnetic (EM) field on ZIS surface, which further extends the light harvesting to visible-to-near infrared region and simultaneously boosts the generation rate of plasmon-induced hot electrons from Au and photoexcited electrons from ZIS. In addition, the Pt shell plays the role of electron sink, leading to the efficiently separation of electron-holes in Au NPs and ZIS and thus further increase the H2 evolution. All of these make [email protected]/ZIS possess the extraordinary H2 evolution ability. We believe that the present strategy would be a significant contribution to design and prepare the efficient photocatalysts based on the plasmonic effect towards water splitting.
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