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热电子驱动化学反应中催化效应的重要性。

The Importance of Catalytic Effects in Hot-Electron-Driven Chemical Reactions.

作者信息

Khurshid Farheen, Muthu Jeyavelan, Wang Yen-Yu, Wang Yao-Wei, Shih Mu-Chen, Chen Ding-Rui, Lu Yu-Jung, Austin Drake, Glavin Nicholas, Plšek Jan, Kalbáč Martin, Hsieh Ya-Ping, Hofmann Mario

机构信息

Department of Low-Dimensional Systems, J. Heyrovský Institute of Physical Chemistry, Academy of Sciences of the Czech Republic, v.v.i., Dolejškova 3, 18223 Prague 8, Czech Republic.

Department of Physics, National Taiwan University, Taipei 10617, Taiwan.

出版信息

ACS Nano. 2024 Dec 17;18(50):34332-34340. doi: 10.1021/acsnano.4c12923. Epub 2024 Dec 4.

Abstract

Hot electrons (HEs) represent out-of-equilibrium carriers that are capable of facilitating reactions which are inaccessible under conventional conditions. Despite the similarity of the HE process to catalysis, optimization strategies such as orbital alignment and adsorption kinetics have not received significant attention in enhancing the HE-driven reaction yield. Here, we investigate catalytic effects in HE-driven reactions using a compositional catalyst modification (CCM) approach. Through a top-down alloying process and systematic characterization, using electrochemical, photodegradation, and ultrafast spectroscopy, we are able to disentangle chemical effects from competing electronic phenomena. Correlation between reactant energetics and the HE reaction yield demonstrates the crucial role of orbital alignment in HE catalytic efficiency. Optimization of this parameter was found to enhance HE reaction efficiency 5-fold, paving the way for tailored design of HE-based catalysts for sustainable chemistry applications. Finally, our study unveils an emergent ordering effect in photocatalytic HE processes that imparts the catalyst with an unexpected polarization dependence.

摘要

热电子(HEs)代表非平衡载流子,它们能够促进在传统条件下无法进行的反应。尽管热电子过程与催化作用有相似之处,但诸如轨道排列和吸附动力学等优化策略在提高热电子驱动反应产率方面尚未受到足够重视。在此,我们采用成分催化剂改性(CCM)方法研究热电子驱动反应中的催化作用。通过自上而下的合金化过程和系统表征,利用电化学、光降解和超快光谱技术,我们能够将化学效应与相互竞争的电子现象区分开来。反应物能量与热电子反应产率之间的相关性表明轨道排列在热电子催化效率中起着关键作用。发现优化该参数可将热电子反应效率提高5倍,为基于热电子的催化剂用于可持续化学应用的定制设计铺平了道路。最后,我们的研究揭示了光催化热电子过程中一种新出现的有序效应,这种效应赋予催化剂意想不到的极化依赖性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6c4e/11656843/0a91064714e3/nn4c12923_0001.jpg

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