4.6 Review

From structural ceramics to 2D materials with multi-applications: A review on the development from MAX phases to MXenes

期刊

JOURNAL OF ADVANCED CERAMICS
卷 10, 期 6, 页码 1194-1242

出版社

SPRINGER
DOI: 10.1007/s40145-021-0535-5

关键词

MAX phases; MXenes; Ti3SiC2; Ti3C2Tx

资金

  1. National Natural Science Foundation of China [51772077, 51602184, 11872171]
  2. Program for Innovative Research Team (Science and Technology) in the University of Henan Province [19IRTSTHN027]
  3. China Postdoctoral Science Foundation [2019M652537]
  4. Henan Postdoctoral Foundation [19030065]
  5. Henan Province Key Science and Technology Research Projects [202102310628]
  6. Foundation of Henan Educational Committee [20B430006]

向作者/读者索取更多资源

MAX phases and MXenes are key focuses of research, with MAX phases known for their unique microstructure and properties, particularly their crack healing abilities; MXene research centers around preparation processes, microstructure, composites, and applications, with a primary focus on energy storage and electromagnetic interference shielding. New research directions and future trends on MAX phases and MXenes are also discussed.
MAX phases (Ti3SiC2, Ti3AlC2, V2AlC, Ti4AlN3, etc.) are layered ternary carbides/nitrides, which are generally processed and researched as structure ceramics. Selectively removing A layer from MAX phases, MXenes (Ti3C2, V2C, Mo2C, etc.) with two-dimensional (2D) structure can be prepared. The MXenes are electrically conductive and hydrophilic, which are promising as functional materials in many areas. This article reviews the milestones and the latest progress in the research of MAX phases and MXenes, from the perspective of ceramic science. Especially, this article focuses on the conversion from MAX phases to MXenes. First, we summarize the microstructure, preparation, properties, and applications of MAX phases. Among the various properties, the crack healing properties of MAX phase are highlighted. Thereafter, the critical issues on MXene research, including the preparation process, microstructure, MXene composites, and application of MXenes, are reviewed. Among the various applications, this review focuses on two selected applications: energy storage and electromagnetic interference shielding. Moreover, new research directions and future trends on MAX phases and MXenes are also discussed.

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