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在存在羟基吸附物的情况下,对CO等离子体光催化中热电子转移的研究。

investigation of hot electron transfer in CO plasmonic photocatalysis in the presence of hydroxyl adsorbate.

作者信息

Fusco Zelio, Koenig Dirk, Smith Sean C, Beck Fiona Jean

机构信息

Renewable Fuel Group, School of Engineering, College of Engineering, Computing and Cybernetics, The Australian National University, Canberra, ACT 2601, Australia.

Integrated Materials Design Lab, The Australian National University, Canberra, ACT 2601, Australia.

出版信息

Nanoscale Horiz. 2024 May 29;9(6):1030-1041. doi: 10.1039/d4nh00046c.

Abstract

Photoreduction of carbon dioxide (CO) on plasmonic structures is of great interest in photocatalysis to aid selectivity. While species commonly found in reaction environments and associated intermediates can steer the reaction down different pathways by altering the potential energy landscape of the system, they are often not addressed when designing efficient plasmonic catalysts. Here, we perform an atomistic study of the effect of the hydroxyl group (OH) on CO activation and hot electron generation and transfer using first-principles calculations. We show that the presence of OH is essential in breaking the linear symmetry of CO, which leads to a charge redistribution and a decrease in the OCO angle to 134°, thereby activating CO. Analysis of the partial density of states (pDOS) demonstrates that the OH group mediates the orbital hybridization between Au and CO resulting in more accessible states, thus facilitating charge transfer. By employing time-dependent density functional theory (TDDFT), we quantify the fraction of hot electrons directly generated into hybridized molecular states at resonance, demonstrating a broader energy distribution and an 11% increase in charge-transfer in the presence of OH groups. We further show that the spectral overlap between excitation energy and plasmon resonance plays a critical role in efficiently modulating electron transfer processes. These findings contribute to the mechanistic understanding of plasmon-mediated reactions and demonstrate the importance of co-adsorbed species in tailoring the electron transfer processes, opening new avenues for enhancing selectivity.

摘要

等离子体结构上二氧化碳(CO)的光还原在光催化中对于提高选择性具有重大意义。虽然反应环境中常见的物种及相关中间体可以通过改变系统的势能面来引导反应走向不同路径,但在设计高效的等离子体催化剂时,这些因素往往未被考虑。在此,我们使用第一性原理计算对羟基(OH)对CO活化以及热电子产生和转移的影响进行了原子尺度研究。我们表明,OH的存在对于打破CO的线性对称性至关重要,这会导致电荷重新分布,并且OCO角减小至134°,从而活化CO。对态密度(pDOS)的分析表明,OH基团介导了Au与CO之间的轨道杂化,产生了更多可利用的态,从而促进了电荷转移。通过采用含时密度泛函理论(TDDFT),我们量化了在共振时直接产生到杂化分子态中的热电子分数,结果表明在存在OH基团的情况下,能量分布更宽,电荷转移增加了11%。我们进一步表明,激发能量与等离子体共振之间的光谱重叠在有效调节电子转移过程中起着关键作用。这些发现有助于对等离子体介导反应的机理理解,并证明了共吸附物种在调控电子转移过程中的重要性,为提高选择性开辟了新途径。

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