等离子体驱动的苯胺衍生物的氧化偶联吸附:对乙基苯胺和对巯基苯胺的比较研究。

Kexun Chen, Hui Wang
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引用次数: 3

摘要

等离子体驱动的光催化已经成为一种范式转换的方法,基于这种方法,光子的能量可以被明智地利用,以纳米级精度的区域选择性方式触发金属纳米结构表面上的界面分子转化。在过去的十年中,通过等离子体驱动的硫代苯胺衍生物的氧化偶联形成芳香偶氮化合物已经成为发展等离子体介导光化学的详细机制理解的测试平台。这种光催化双分子偶联反应不仅可以发生在硫代苯胺衍生物吸附物之间,也可以发生在它们的非硫代类似物之间。然而,在等离子体驱动的耦合反应中,非硫代吸附剂的行为与硫代吸附剂的行为不同,在很大程度上仍未被探索。在这里,我们系统地比较了烷基化苯胺衍生物对乙基苯胺和硫代苯胺衍生物对巯基苯胺在银纳米光催化剂表面的吸附构象、结构柔韧性、光化学反应活性和转化动力学。我们采用表面增强拉曼散射作为原位光谱工具,实时跟踪等离子体驱动耦合反应过程中转化分子吸附物的详细结构演变。在密度泛函理论计算的帮助下,对光谱结果的严格分析奠定了深刻的知识基础,使我们能够阐明金属-吸附物相互作用的化学性质的改变如何深刻地影响等离子体驱动光催化反应中分子吸附物的转化行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plasmon-driven oxidative coupling of aniline-derivative adsorbates: A comparative study of para-ethynylaniline and para-mercaptoaniline.
Plasmon-driven photocatalysis has emerged as a paradigm-shifting approach, based on which the energy of photons can be judiciously harnessed to trigger interfacial molecular transformations on metallic nanostructure surfaces in a regioselective manner with nanoscale precision. Over the past decade, the formation of aromatic azo compounds through plasmon-driven oxidative coupling of thiolated aniline-derivative adsorbates has become a testbed for developing detailed mechanistic understanding of plasmon-mediated photochemistry. Such photocatalytic bimolecular coupling reactions may occur not only between thiolated aniline-derivative adsorbates but also between their nonthiolated analogs. How the nonthiolated adsorbates behave differently from their thiolated counterparts during the plasmon-driven coupling reactions, however, remains largely unexplored. Here, we systematically compare an alkynylated aniline-derivative, para-ethynylaniline, to its thiolated counterpart, para-mercaptoaniline, in terms of their adsorption conformations, structural flexibility, photochemical reactivity, and transforming kinetics on Ag nanophotocatalyst surfaces. We employ surface-enhanced Raman scattering as an in situ spectroscopic tool to track the detailed structural evolution of the transforming molecular adsorbates in real time during the plasmon-driven coupling reactions. Rigorous analysis of the spectroscopic results, further aided by density functional theory calculations, lays an insightful knowledge foundation that enables us to elucidate how the alteration of the chemical nature of metal-adsorbate interactions profoundly influences the transforming behaviors of the molecular adsorbates during plasmon-driven photocatalytic reactions.
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