Huh Hyun, Trinh Hoa Duc, Lee Dokyung, Yoon Sangwoon
Department of Chemistry , Chung-Ang University , 84 Heukseok-ro , Dongjak-gu, Seoul 06974 , Korea.
ACS Appl Mater Interfaces. 2019 Jul 10;11(27):24715-24724. doi: 10.1021/acsami.9b05509. Epub 2019 Jun 25.
Hot-electron chemistry at gold nanoparticle (AuNP) surfaces has received much attention recently because its understanding provides a basis for plasmonic photocatalysis and photovoltaics. Nonradiative decay of excited surface plasmons produces energetic hot charge carriers that transfer to adsorbate molecules and induce chemical reactions. Such plasmon-driven reactions, however, have been limited to a few systems, notably the dimerization of 4-aminobenzenethiol to 4,4'-dimercaptoazobenzene. In this work, we explore a new class of plasmon-driven reactions associated with a unimolecular bond cleavage process. We unveil the mechanism of the decarboxylation reaction of 4-mercaptobenzoic acid and extend the mechanism to account for the β-cleavage reaction of 4-mercaptobenzyl alcohol. Combining the construction of well-controlled nanogap systems and sensitive Raman spectroscopy with methodical changes of experimental conditions (laser wavelengths, interface materials, pH, ambient gases, etc.), we track the hot charge carriers from the formation to the transfer to reactants, which provides insights into how plasmon excitation eventually leads to the C-C bond cleavage of the molecules in the nanogap.
金纳米颗粒(AuNP)表面的热电子化学近年来备受关注,因为对其的理解为等离子体光催化和光ovoltaics提供了基础。激发表面等离子体的非辐射衰变产生高能热电荷载流子,这些载流子转移到吸附分子上并引发化学反应。然而,这种等离子体驱动的反应仅限于少数系统,特别是4-氨基苯硫醇二聚化为4,4'-二巯基偶氮苯。在这项工作中,我们探索了一类与单分子键断裂过程相关的新型等离子体驱动反应。我们揭示了4-巯基苯甲酸脱羧反应的机制,并将该机制扩展以解释4-巯基苄醇的β-断裂反应。通过将构建良好控制的纳米间隙系统和灵敏的拉曼光谱与实验条件(激光波长、界面材料、pH值、环境气体等)的系统变化相结合,我们追踪了热电荷载流子从形成到转移到反应物的过程,这为等离子体激发最终如何导致纳米间隙中分子的C-C键断裂提供了见解。