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用于等离子体催化的多金属纳米结构中的能量流控制

Controlling energy flow in multimetallic nanostructures for plasmonic catalysis.

作者信息

Aslam Umar, Chavez Steven, Linic Suljo

机构信息

Department of Chemical Engineering, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

Nat Nanotechnol. 2017 Oct;12(10):1000-1005. doi: 10.1038/nnano.2017.131. Epub 2017 Jul 17.

Abstract

It has been shown that photoexcitation of plasmonic metal nanoparticles (Ag, Au and Cu) can induce direct photochemical reactions. However, the widespread application of this technology in catalysis has been limited by the relatively poor chemical reactivity of noble metal surfaces. Despite efforts to combine plasmonic and catalytic metals, the physical mechanisms that govern energy transfer from plasmonic metals to catalytic metals remain unclear. Here we show that hybrid core-shell nanostructures in which a core plasmonic metal harvests visible-light photons can selectively channel that energy into catalytically active centres on the nanostructure shell. To accomplish this, we developed a synthetic protocol to deposit a few monolayers of Pt onto Ag nanocubes. This model system allows us to conclusively separate the optical and catalytic functions of the hybrid nanomaterial and determine that the flow of energy is strongly biased towards the excitation of energetic charge carriers in the Pt shell. We demonstrate the utility of these nanostructures for photocatalytic chemical reactions in the preferential oxidation of CO in excess H. Our data demonstrate that the reaction occurs exclusively on the Pt surface.

摘要

研究表明,等离子体金属纳米颗粒(银、金和铜)的光激发可引发直接光化学反应。然而,这项技术在催化领域的广泛应用受到了贵金属表面相对较差的化学反应活性的限制。尽管人们努力将等离子体金属与催化金属结合,但控制从等离子体金属到催化金属能量转移的物理机制仍不清楚。在此,我们展示了一种核壳混合纳米结构,其中核心等离子体金属捕获可见光光子,并能将该能量选择性地引导至纳米结构壳层上的催化活性中心。为实现这一点,我们开发了一种合成方法,在银纳米立方体上沉积几层铂单分子层。这个模型系统使我们能够明确区分混合纳米材料的光学和催化功能,并确定能量流强烈偏向于铂壳层中高能电荷载流子的激发。我们展示了这些纳米结构在过量氢气中一氧化碳优先氧化的光催化化学反应中的实用性。我们的数据表明,反应仅在铂表面发生。

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