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用于氢/氧转化反应的碳载单原子催化剂的宏观/微观环境调控。

Macro/Micro-Environment Regulating Carbon-Supported Single-Atom Catalysts for Hydrogen/Oxygen Conversion Reactions.

机构信息

Joint International Laboratory on Environmental and Energy Frontier Materials, School of Environmental and Chemical Engineering, Shanghai University, Shanghai, 200444, P. R. China.

School of Materials Science and Engineering, Shanghai University, Shanghai, 200444, P. R. China.

出版信息

Small. 2022 Aug;18(32):e2202394. doi: 10.1002/smll.202202394. Epub 2022 Jul 19.

Abstract

Single-atom catalysts (SACs) have attracted tremendous research interest due to their unique atomic structure, maximized atom utilization, and remarkable catalytic performance. Among the SACs, the carbon-supported SACs have been widely investigated due to their easily controlled properties of the carbon substrates, such as the tunable morphologies, ordered porosity, and abundant anchoring sites. The electrochemical performance of carbon-supported SACs is highly related to the morphological structure of carbon substrates (macro-environment) and the local coordination environments of center metals (micro-environment). This review aims to provide a comprehensive summary on the macro/micro-environment regulating carbon-supported SACs for highly efficient hydrogen/oxygen conversion reactions. The authors first summarize the macro-environment engineering strategies of carbon-supported SACs with altered specific surface areas and porous properties of the carbon substrates, facilitating the mass diffusion kinetics and structural stability. Then the micro-environment engineering strategies of carbon-supported SACs are discussed with the regulated atomic structure and electronic structure of metal centers, boosting the catalytic performance. Insights into the correlation between the co-boosted effect from the macro/micro-environments and catalytic activity for hydrogen/oxygen conversion reactions are summarized and discussed. Finally, the challenges and perspectives are addressed in building highly efficient carbon-supported SACs for practical applications.

摘要

单原子催化剂(SACs)因其独特的原子结构、最大化的原子利用率和卓越的催化性能而引起了极大的研究兴趣。在 SACs 中,由于碳基底易于控制的性质,如可调形态、有序多孔性和丰富的锚固位点,负载型 SACs 得到了广泛的研究。负载型 SACs 的电化学性能与其碳基底的形态结构(宏观环境)和中心金属的局部配位环境(微观环境)密切相关。本综述旨在全面总结宏观/微观环境调控负载型 SACs 以实现高效氢气/氧气转化反应的研究进展。作者首先总结了通过改变碳基底的比表面积和多孔性质来实现负载型 SACs 的宏观环境工程策略,从而促进质量扩散动力学和结构稳定性。然后讨论了负载型 SACs 的微观环境工程策略,包括调控金属中心的原子结构和电子结构,从而提高催化性能。总结并讨论了宏观/微观环境协同增强效应对氢气/氧气转化反应催化活性的影响。最后,提出了在构建用于实际应用的高效负载型 SACs 方面所面临的挑战和展望。

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