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MXenes as Superexcellent Support for Confining Single Atom: Properties, Synthesis, and Electrocatalytic Applications

期刊

SMALL
卷 17, 期 29, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202007113

关键词

energy conversion; metal– support interface interaction; MXenes; single atom catalysts; support

资金

  1. Program for the National Natural Science Foundation of China [51779090, 51879101, 51579098, 51709101, 51521006, 51809090, 51909084]
  2. National Program for Support of Top-Notch Young Professionals of China
  3. Program for Changjiang Scholars and Innovative Research Team in University [IRT-13R17]
  4. Hunan Natural Science Foundation [2020JJ3009]
  5. Hunan Researcher Award Program [2020RC3025]
  6. Hunan Provincial Science and Technology Plan Project [2017SK2243, 2018SK20410, 2016RS3026]
  7. Science and Technology Innovation Program of Hunan Province [2020RC4014]
  8. Fundamental Research Funds for the Central Universities [531119200086, 531118010114, 531118040083, 541109060031, 531118010473]

向作者/读者索取更多资源

MXenes serve as excellent supports for SACs due to their large specific surface area and superior electronic conductivity. The structure and property of MXenes can be manipulated by changing transition metal elements and surface termination.
Single atom catalysts (SACs) have shown their noticeable potential and gradually become a new favorite in catalytic field due to the particular selectivity, high catalytic performance, and strong durability. The most important factor in the synthesis of SACs is the selection of appropriate support and formation of metal-support interaction. Among a large number of nanomaterials, MXenes can be utilized as benign supports for fixing SACs because of their expansive specific surface area, regulable bandgap, superior electronic conductivity, and strong mechanical stability. The structure and property of MXenes can be manipulated by changing transition metal elements and surface termination. Here, the uniqueness and superiority of MXenes as superexcellent supports for confining SACs are analyzed from structure and property. The synthetic strategy of MXene-supported SACs is also summarized, especially emphasizing the immobilization of isolated atom against aggregation by utilizing the formidable metal-support covalent coordination interaction. In addition, the applications of MXene-supported SACs in electrocatalytic field are highlighted, including hydrogen evolution reaction, oxygen evolution reaction, overall water splitting, oxygen reduction reaction, and nitrogen reduction reaction. Finally, the challenges and prospects are pointed out for the further understanding and practical application of MXene-supported SACs in electrocatalysis.

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