A review of how to improve Ti3C2Tx MXene stability
High-quality MXene is achieved through the optimization of the preparation process, which reinforces the MXene material itself. This is achieved by constructing a defensive wall against H2O and O2 using post-processing and promoting the storage environment. Furthermore, the wall is braced to protect...
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Veröffentlicht in: | Chemical engineering journal (Lausanne, Switzerland : 1996) Switzerland : 1996), 2024-09, Vol.496, p.154097, Article 154097 |
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Sprache: | eng |
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Zusammenfassung: | High-quality MXene is achieved through the optimization of the preparation process, which reinforces the MXene material itself. This is achieved by constructing a defensive wall against H2O and O2 using post-processing and promoting the storage environment. Furthermore, the wall is braced to protect against H2O and O2 with the encapsulation protection.
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•The mechanisms of MXene degradation are analyzed from the angles of oxidation and hydrolysis.•The effects of MXene degradation on its physical and chemical properties are discussed.•Strategies for inhibiting or slowing down the degradation of MXene are systematically summarized.
Recently, the two-dimensional (2D) Ti3C2Tx (MXene) has attracted more and more attentions in energy, electronics, environment, biomedicine, etc., due to its unique features such as high conductivity, unusual layered structures, adjustable surface chemistry, and outstanding mechanical properties. However, the easy degradation of MXene in the presence of oxygen and moisture would induce the destruction of its microstructures and thus affect the physical and chemical properties of MXene, resulting in minimal practical applications of MXene-based functional devices. To this end, increasing efforts have been made in the MXene community to improve the environmental stability of MXene, from theories to experiments. It is important to timely summarize the recent progress on the stability of MXene. In this review, firstly, the structures and synthesis of MXenes are briefly introduced. Secondly, the mechanisms of Ti3C2Tx MXene degradation are analyzed from the angles of oxidation and hydrolysis. Thirdly, the effects of MXene degradation on its physical and chemical properties (i.e., electronic, optical, mechanical, and catalytic properties) are carefully discussed, which are often missed in other review articles on MXene stability. Lastly and most importantly, recently reported strategies for effectively inhibiting or slowing down the degradation of MXene are systematically summarized from four aspects of optimizing the MXene preparation process, performing post-treatments on MXene, promoting the storage conditions of MXene, and encapsulation of MXene. This timely review is helpful for preparations, storage, and applications of MXenes in widespread fields. |
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ISSN: | 1385-8947 |
DOI: | 10.1016/j.cej.2024.154097 |