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研究热点工程化纳米天线的等离激元催化动力学。

Investigating Plasmonic Catalysis Kinetics on Hot-Spot Engineered Nanoantennae.

作者信息

Nan Lin, Giráldez-Martínez Jesús, Stefancu Andrei, Zhu Li, Liu Min, Govorov Alexander O, Besteiro Lucas V, Cortés Emiliano

机构信息

Chair in Hybrid Nanosystems, Nanoinstitute Munich, Faculty of Physics, Ludwig-Maxilimians-Universität München, 80539 München, Germany.

CINBIO, University of Vigo, Campus Universitario de Vigo, Lagoas Marcosende, 36310 Vigo, Spain.

出版信息

Nano Lett. 2023 Apr 12;23(7):2883-2889. doi: 10.1021/acs.nanolett.3c00219. Epub 2023 Mar 31.

Abstract

Strong hot-spots can facilitate photocatalytic reactions potentially providing effective solar-to-chemical energy conversion pathways. Although it is well-known that the local electromagnetic field in plasmonic nanocavities increases as the cavity size reduces, the influence of hot-spots on photocatalytic reactions remains elusive. Herein, we explored hot-spot dependent catalytic behaviors on a highly controlled platform with varying interparticle distances. Plasmon-meditated dehalogenation of 4-iodothiophenol was employed to observe time-resolved catalytic behaviors via surface-enhanced Raman spectroscopy on dimers with 5, 10, 20, and 30 nm interparticle distances. As a result, we show that by reducing the gap from 20 to 10 nm, the reaction rate can be sped up more than 2 times. Further reduction in the interparticle distance did not improve reaction rate significantly although the maximum local-field was ∼2.3-fold stronger. Our combined experimental and theoretical study provides valuable insights in designing novel plasmonic photocatalytic platforms.

摘要

强热点可以促进光催化反应,潜在地提供有效的太阳能到化学能的转换途径。尽管众所周知,随着等离子体纳米腔尺寸的减小,其局部电磁场会增强,但热点对光催化反应的影响仍然难以捉摸。在此,我们在一个具有不同颗粒间距离的高度可控平台上探索了热点依赖的催化行为。通过表面增强拉曼光谱对颗粒间距离分别为5、10、20和30 nm的二聚体进行4-碘硫酚的等离子体介导脱卤反应,以观察时间分辨的催化行为。结果表明,将间隙从20 nm减小到10 nm,反应速率可加快2倍以上。尽管最大局部场强约强2.3倍,但进一步减小颗粒间距离并没有显著提高反应速率。我们结合实验和理论的研究为设计新型等离子体光催化平台提供了有价值的见解。

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