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将单原子钌间距与长程相互作用相关联可促进析氢反应动力学。

Correlating Single-Atomic Ruthenium Interdistance with Long-Range Interaction Boosts Hydrogen Evolution Reaction Kinetics.

作者信息

Jiang Bowen, Zhu Jiawei, Xia Zhenzhi, Lyu Jiahui, Li Xingchuan, Zheng Lirong, Chen Cheng, Chaemchuen Somboon, Bu Tongle, Verpoort Francis, Mu Shichun, Wu Jinsong, Wang John, Kou Zongkui

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan, 430070, P. R. China.

SEU-FEI Nano-Pico Center, Key Lab of MEMS of Ministry of Education, Southeast University, Nanjing, 210096, P. R. China.

出版信息

Adv Mater. 2024 Jan;36(2):e2310699. doi: 10.1002/adma.202310699. Epub 2023 Nov 22.

Abstract

Correlated single-atom catalysts (c-SACs) with tailored intersite metal-metal interactions are superior to conventional catalysts with isolated metal sites. However, precise quantification of the single-atomic interdistance (SAD) in c-SACs is not yet achieved, which is essential for a crucial understanding and remarkable improvement of the correlated metal-site-governed catalytic reaction kinetics. Here, three Ru c-SACs are fabricated with precise SAD using a planar organometallic molecular design and π-π molecule-carbon nanotube confinement. This strategy results in graded SAD from 2.4 to 9.3 Å in the Ru c-SACs, wherein tailoring the Ru SAD into 7.0 Å generates an exceptionally high turnover frequency of 17.92 H s and a remarkable mass activity of 100.4 A mg under 50 and 100 mV overpotentials, respectively, which is superior to all the Ru-based catalysts reported previously. Furthermore, density functional theory calculations confirm that Ru SAD has a negative correlation with its d-band center owing to the long-range interactions induced by distinct local atomic geometries, resulting in an appropriate electrostatic potential and the highest catalytic activity on c-SACs with 7.0 Å Ru SAD. The present study promises an attractive methodology for experimentally quantifying the metal SAD to provide valuable insights into the catalytic mechanism of c-SACs.

摘要

具有定制的位点间金属-金属相互作用的相关单原子催化剂(c-SACs)优于具有孤立金属位点的传统催化剂。然而,c-SACs中单个原子间距(SAD)的精确量化尚未实现,而这对于深入理解和显著改善相关金属位点主导的催化反应动力学至关重要。在此,使用平面有机金属分子设计和π-π分子-碳纳米管限域制备了具有精确SAD的三种Ru c-SACs。该策略在Ru c-SACs中产生了从2.4到9.3 Å的分级SAD,其中将Ru SAD调整为7.0 Å时,在50和100 mV过电位下分别产生了17.92 H s的异常高周转频率和100.4 A mg的显著质量活性,优于先前报道的所有Ru基催化剂。此外,密度泛函理论计算证实,由于不同局部原子几何结构引起的长程相互作用,Ru SAD与其d带中心呈负相关,从而在具有7.0 Å Ru SAD的c-SACs上产生了合适的静电势和最高的催化活性。本研究有望提供一种有吸引力的方法,用于通过实验量化金属SAD,从而为c-SACs的催化机制提供有价值的见解。

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