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Al-Pd 纳米盘杂化二聚体作为天线-反应体光催化剂。

Al-Pd Nanodisk Heterodimers as Antenna-Reactor Photocatalysts.

机构信息

Department of Electrical and Computer Engineering, ‡Department of Chemistry, §Department of Physics and Astronomy, and ∥Laboratory for Nanophotonics, Rice University , 6100 Main Street, Houston, Texas 77005, United States.

出版信息

Nano Lett. 2016 Oct 12;16(10):6677-6682. doi: 10.1021/acs.nanolett.6b03582. Epub 2016 Sep 26.

Abstract

Photocatalysis uses light energy to drive chemical reactions. Conventional industrial catalysts are made of transition metal nanoparticles that interact only weakly with light, while metals such as Au, Ag, and Al that support surface plasmons interact strongly with light but are poor catalysts. By combining plasmonic and catalytic metal nanoparticles, the plasmonic "antenna" can couple light into the catalytic "reactor". This interaction induces an optical polarization in the reactor nanoparticle, forcing a plasmonic response. When this "forced plasmon" decays it can generate hot carriers, converting the catalyst into a photocatalyst. Here we show that precisely oriented, strongly coupled Al-Pd nanodisk heterodimers fabricated using nanoscale lithography can function as directional antenna-reactor photocatalyst complexes. The light-induced hydrogen dissociation rate on these structures is strongly dependent upon the polarization angle of the incident light with respect to the orientation of the antenna-reactor pair. Their high degree of structural precision allows us to microscopically quantify the photocatalytic activity per heterostructure, providing precise photocatalytic quantum efficiencies. This is the first example of precisely designed heterometallic nanostructure complexes for plasmon-enabled photocatalysis and paves the way for high-efficiency plasmonic photocatalysts by modular design.

摘要

光催化利用光能来驱动化学反应。传统的工业催化剂由过渡金属纳米粒子制成,它们与光的相互作用很弱,而像 Au、Ag 和 Al 这样支持表面等离激元的金属与光相互作用很强,但它们却是较差的催化剂。通过将等离子体和催化金属纳米粒子结合,等离子体的“天线”可以将光耦合到催化“反应器”中。这种相互作用会在反应器纳米粒子中诱导光学极化,从而产生等离子体响应。当这种“强制等离子体”衰减时,它可以产生热载流子,将催化剂转化为光催化剂。在这里,我们展示了使用纳米尺度光刻技术制造的精确取向、强耦合的 Al-Pd 纳米盘杂化二聚体可以作为定向天线-反应器光催化剂复合物。这些结构上的光诱导氢离解速率强烈依赖于入射光相对于天线-反应器对的偏振角。它们高度的结构精度使我们能够微观地量化每个杂化结构的光催化活性,提供精确的光催化量子效率。这是首次精确设计用于等离子体增强光催化的异金属纳米结构复合物的实例,为通过模块化设计实现高效等离子体光催化剂铺平了道路。

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