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通过构建类金属碳化钨载体稳定低价单原子以实现高效氢氧化和析氢反应

Stabilizing Low-Valence Single Atoms by Constructing Metalloid Tungsten Carbide Supports for Efficient Hydrogen Oxidation and Evolution.

作者信息

Wang Luqi, Xu Zipeng, Kuo Chun-Han, Peng Jian, Hu Feng, Li Linlin, Chen Han-Yi, Wang Jiazhao, Peng Shengjie

机构信息

College of Materials Science and Technology, Nanjing University of Aeronautics and Astronautics, Nanjing, 210016, China.

Department of Materials Science and Engineering, National Tsing Hua University Hsinchu 30013 (Taiwan).

出版信息

Angew Chem Int Ed Engl. 2023 Oct 16;62(42):e202311937. doi: 10.1002/anie.202311937. Epub 2023 Sep 13.

Abstract

Designing novel single-atom catalysts (SACs) supports to modulate the electronic structure is crucial to optimize the catalytic activity, but rather challenging. Herein, a general strategy is proposed to utilize the metalloid properties of supports to trap and stabilize single-atoms with low-valence states. A series of single-atoms supported on the surface of tungsten carbide (M-WC , M=Ru, Ir, Pd) are rationally developed through a facile pyrolysis method. Benefiting from the metalloid properties of WC , the single-atoms exhibit weak coordination with surface W and C atoms, resulting in the formation of low-valence active centers similar to metals. The unique metal-metal interaction effectively stabilizes the low-valence single atoms on the WC surface and improves the electronic orbital energy level distribution of the active sites. As expected, the representative Ru-WC exhibits superior mass activities of 7.84 and 62.52 A mg for the hydrogen oxidation and evolution reactions (HOR/HER), respectively. In-depth mechanistic analysis demonstrates that an ideal dual-sites cooperative mechanism achieves a suitable adsorption balance of H and OH , resulting in an energetically favorable Volmer step. This work offers new guidance for the precise construction of highly active SACs.

摘要

设计新型单原子催化剂(SACs)载体以调节电子结构对于优化催化活性至关重要,但颇具挑战性。在此,我们提出了一种通用策略,利用载体的类金属性质来捕获和稳定低价态单原子。通过简便的热解方法合理开发了一系列负载在碳化钨表面的单原子(M-WC,M = Ru、Ir、Pd)。受益于WC的类金属性质,单原子与表面W和C原子表现出弱配位,从而形成类似于金属的低价活性中心。独特的金属-金属相互作用有效地稳定了WC表面的低价单原子,并改善了活性位点的电子轨道能级分布。正如预期的那样,代表性的Ru-WC在氢氧化反应和析氢反应(HOR/HER)中分别表现出7.84和62.52 A mg的优异质量活性。深入的机理分析表明,理想的双位点协同机制实现了H和OH的合适吸附平衡,从而产生了能量上有利的Volmer步骤。这项工作为精确构建高活性SACs提供了新的指导。

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