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金属‒二氧化钛界面处氧空位的形成促进光催化产氢

Oxygen Vacancy Formation at Metal‒TiO₂ Interface Yielding Enhanced Photocatalytic Hydrogen Generation.

作者信息

Quach Vien-Duong, Harsan Aparna, Spadaro Maria Chiara, Botifoll Marc, Arbiol Jordi, Knezevic Marija, Colbeau-Justin Christophe, Dumeignil Franck, Vezin Hervé, Wojcieszak Robert, Le Bahers Tangui, Michel Carine, Ghazzal Mohamed Nawfal

机构信息

Institut de Chimie Physique, Université Paris-Saclay, CNRS UMR 8000, Orsay, F-91405, France.

CNRS, ENS de Lyon, LCH - Laboratoire de Chimie, UMR 5182, Lyon, F-69342, France.

出版信息

Adv Sci (Weinh). 2025 Aug;12(32):e01835. doi: 10.1002/advs.202501835. Epub 2025 Jun 20.

Abstract

Strong Metal-Support Interaction (SMSI) is a key concept in heterogeneous catalysis, but it remains underexplored in the context of photon-to-hydrogen conversion, as coupling of metallic nanoparticles with photocatalysts is overlooked and only discussed in terms of Schottky barrier formation. In this study, we provide deep insights into the effect of Au encapsulation with TiO overlayer on enhancing photocatalytic hydrogen generation. Our findings reveal that the construction of a SMSI-like nanostructure induces the formation of oxygen vacancies at the Au‒TiO interface which actively facilitate charge carrier separation through interfacial band reconstruction. The presence of defects is evidenced by Electron Paramagnetic Resonance and X-ray Photoelectron Spectroscopy, unveiling their relationship with photocatalytic activities. Consistent with experimental results, Density Functional Theory (DFT) calculations demonstrate that Au promotes oxygen vacancy formation. These vacancies located at the TiO surface significantly enhances HO and MeOH adsorption during H evolution reactions. The SMSI-like concept was extended to Pt, Pd, and Ag, in which the oxygen vacancy formation energy at the metal-semiconductor interface varied depending on the metal, as computed by DFT. The results suggest that photocatalytic activity is related to the ease of oxygen vacancy formation, which is influenced by the nature of the metals.

摘要

强金属-载体相互作用(SMSI)是多相催化中的一个关键概念,但在光催化制氢领域,由于金属纳米颗粒与光催化剂的耦合被忽视,且仅在肖特基势垒形成方面进行讨论,因此该领域仍未得到充分探索。在本研究中,我们深入探讨了用TiO覆盖层包覆Au对增强光催化产氢的影响。我们的研究结果表明,类SMSI纳米结构的构建会在Au-TiO界面诱导氧空位的形成,这些氧空位通过界面能带重构积极促进电荷载流子的分离。电子顺磁共振和X射线光电子能谱证实了缺陷的存在,并揭示了它们与光催化活性的关系。与实验结果一致,密度泛函理论(DFT)计算表明Au促进了氧空位的形成。这些位于TiO表面的空位在析氢反应过程中显著增强了HO和MeOH的吸附。类SMSI概念被扩展到Pt、Pd和Ag,根据DFT计算,金属-半导体界面处的氧空位形成能因金属而异。结果表明,光催化活性与氧空位形成的难易程度有关,而氧空位形成的难易程度受金属性质的影响。

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