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揭示铂单原子与团簇双活性位协同增强光催化析氢性能的作用机制

Mechanistic Insight into the Synergy between Platinum Single Atom and Cluster Dual Active Sites Boosting Photocatalytic Hydrogen Evolution.

机构信息

Interdisciplinary Research Center of Biology & Catalysis, School of Life Sciences, Northwestern Polytechnical University, Xi'an, 710072, P. R. China.

College of Chemical Engineering, Xiangtan University, Xiangtan, 411105, P. R. China.

出版信息

Adv Mater. 2023 Jun;35(25):e2300902. doi: 10.1002/adma.202300902. Epub 2023 Apr 29.

Abstract

In the energy transition context, the design and synthesis of high-performance Pt-based photocatalysts with low Pt content and ultrahigh atom-utilization efficiency for hydrogen production are essential. Herein, a facile approach for decorating atomically dispersed Pt cocatalysts having single-atom (SA) and atomic cluster (C) dual active sites on CdS nanorods (Pt /CdS) via atomic layer deposition is reported. The size of the cocatalyst and the spatial intimacy of the cocatalyst active sites are precisely engineered at the atomic scale. The Pt /CdS photocatalysts show the optimized photocatalytic hydrogen evolution activity, achieving a reaction rate of 80.4 mmol h g , which is 1.6- and 7.3-fold higher than those of the Pt /CdS and Pt /CdS photocatalysts, respectively. Thorough characterization and theoretical calculations reveal that the enhanced photocatalytic activity is due to a remarkable synergy between SAs and atomic clusters as dual active sites, which are responsible for water adsorption-dissociation and hydrogen desorption, respectively. A similar synergetic effect is found in a representative Pt/TiO system, indicating the generality of the strategy. This study demonstrates the significance of the synergy between active sites for enhancing the reaction efficiency, opening a new avenue for the rational design of atomically dispersed photocatalysts with high efficiency.

摘要

在能源转型背景下,设计和合成具有低铂含量和超高原子利用率的高效 Pt 基光催化剂对于产氢至关重要。本文报道了一种通过原子层沉积在 CdS 纳米棒上修饰具有单原子 (SA) 和原子簇 (C) 双活性位的原子分散 Pt 助催化剂的简便方法 (Pt/CdS)。助催化剂的尺寸和助催化剂活性位的空间接近度在原子尺度上得到了精确的设计。Pt/CdS 光催化剂表现出优化的光催化析氢活性,达到 80.4 mmol h g 的反应速率,分别是 Pt/CdS 和 Pt/CdS 光催化剂的 1.6 倍和 7.3 倍。深入的表征和理论计算揭示了增强的光催化活性是由于双活性位的 SAs 和原子簇之间的显著协同作用,分别负责水的吸附-解离和氢的脱附。在代表性的 Pt/TiO 体系中也发现了类似的协同效应,表明该策略具有普遍性。本研究证明了活性位之间协同作用对于提高反应效率的重要性,为高效原子分散光催化剂的合理设计开辟了新途径。

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