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二維過渡金屬碳化物/碳氮化物(MXene)的穩定性及改進方法

Stability and improvement of two-dimensional transition metal carbides and/or carbonitrides (MXene)

  • 摘要: 二維(2D)過渡金屬碳化物/碳氮化物(Mxene)材料,因其良好的親水性、導電性、柔韌性以及高贗電容等特性,在儲能、海水淡化、催化、電磁干擾屏蔽、透明導電薄膜等領域有著巨大的應用潛力。然而,由于MXene材料中活性過渡金屬、表面官能團以及結構缺陷的存在,使其在無保護的環境中(含有水、氧等)很容易被氧化,導致穩定性較差。MXene材料的氧化破壞了其片狀結構,降低了其電導率,限制了其更廣泛的應用。本文簡要介紹了MXene的結構和合成方法;綜述了MXene在不同條件下不穩定的機理,即表面官能團和周圍介質發生氧化反應;并從儲存條件、合成方法、氣氛熱處理、表面電性修飾、摻雜等方面討論了提高MXene穩定性的方法。

     

    Abstract: In recent years, a new family of two-dimensional (2D) transition metal carbides and/or carbonitrides, labeled MXenes, has attracted immense attention from researchers. Due to unusual hydrophilicity, electrical conductivity, flexibility, and pseudocapacitance, MXenes have great potential application in energy storage, water desalination, catalysis, electromagnetic interference shielding, transparent conductive films, and so on. However, MXenes exhibit poor stability because of their structural defects, active transition metals, and termination groups. These greatly destroy the sheet structure and decrease their conductivity, thereby restricting their application fields. In this review, the structure and synthesis methods of MXenes are briefly introduced. Then, we focus on current research studies regarding the stability of MXenes. The mechanism of oxidation is also discussed. Ti vacancies and the edges are the preferential oxidation sites in MXene sheets. Based on this, the methods to improve the MXene stability, including controlling the storage environment, improving the synthesis method, annealing in an atmosphere, modification based on the surface electric state, and doping impurities, are further discussed. First, the optimal requirements for MXenes storage are low temperature, desiccation, and oxygen isolation. Second, soft etching methods must be applied to synthesize MXenes to reduce the defect density of their sheet surface. Then, annealing MXenes in an atmosphere can enable the tailoring of the surface structure and functional groups for enhanced MXene stability. Lastly, more methods have been applied to improve the stability of MXenes based on their surface electric state. Since the MXene sheet surface is electronegative, their oxidation can be impeded by loading cations into the sheets. Similarly, since the edge of these sheets is electropositive, polyanions can be absorbed onto the edge to protect the MXene sheets. Moreover, compositing metal oxides, organic macromolecules, and nanocarbon on their surface can also improve the stability of MXenes. Finally, doping with impurities can also improve the band energy of MXenes. Meanwhile, our idea to improve the stability of MXenes is also briefly introduced.

     

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