Ordered assembly of MXene based composite films and their applications in energy storage and electromagnetic interference shielding

被引:0
|
作者
Liu J. [1 ]
Yang W. [2 ]
Yang W. [2 ]
Lu H. [1 ]
机构
[1] School of Energy, Materials and Chemical Engineering, Hefei University, Hefei
[2] Department of Architecture and Civil Engineering, City University of Hong Kong, Hong Kong
关键词
EMI shielding; Energy storage; Films; MXene; Ordered assembly;
D O I
10.13801/j.cnki.fhclxb.20210408.001
中图分类号
学科分类号
摘要
The increasing popularity of 5G electronic consumer products has brought convenience to people's life, while there are some problems, such as high risk of electromagnetic interference (EMI) and high power consuming of 5G networks. To solve these problems, it is necessary to develop novel materials with high EMI shielding performance and high-capacity electrode materials. As a new two-dimensional (2D) material, transition metal carbides/nitrides (MXene) have excellent conductivity, low density, hydrophilic surface, 2D layer morphology and tunable surface chemistry, etc. MXene shows promising application prospects in EMI shielding and energy storage due to the facile operation for fabricating films. A lot of MXene-based composite films have been reported recently. Thus in this article, we introduced the preparation methods of MXene nanosheets and MXene-based composite films including their advantages and disadvantages. Secondly, we summarized the research progress of MXene in lithium battery, supercapacitor and EMI shielding fields, and concluded the current mainstream composite materials and the characteristics of MXene composite film in structure and performance. Finally, we proposed critical insights on these scientific challenges and potential solutions. Besides, a future perspective on this technology including other challenges was also described. © 2021, Editorial Office of Acta Materiae Compositae Sinica. All right reserved.
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页码:2404 / 2417
页数:13
相关论文
共 112 条
  • [31] AHN S, HAN T H, MALESKI K, Et al., A 2D titanium carbide mxene flexible electrode for high-efficiency light-emitting diodes, Advanced Materials, 32, 23, (2020)
  • [32] JIN X, WANG J, DAI L, Et al., Flame-retardant poly(vinyl alcohol)/MXene multilayered films with outstanding electromagnetic interference shielding and thermal conductive performances, Chemical Engineering Journal, 380, (2020)
  • [33] FENG Y, WU Q, DENG Q, Et al., High dielectric and breakdown properties obtained in a PVDF based nanocomposite with sandwich structure at high temperature via all-2D design, Journal of Materials Chemistry C, 7, 22, pp. 6744-6751, (2019)
  • [34] BORGES J, MANO J F., Molecular interactions driving the layer-by-layer assembly of multilayers, Chemical Reviews, 114, 18, pp. 8883-8942, (2014)
  • [35] YUN J, ECHOLS I, FLOUDA P, Et al., Layer-by-layer assembly of polyaniline nanofibers and MXene thin-film electrodes for electrochemical energy storage, ACS Applied Materials & Interfaces, 11, 51, pp. 47929-47938, (2019)
  • [36] QIN L, TAO Q, LIU X, Et al., Polymer-MXene composite films formed by MXene-facilitated electrochemical polymerization for flexible solid-state microsupercapacitors, Nano Energy, 60, pp. 734-742, (2019)
  • [37] LI J, LEVITT A, KURRA N, Et al., MXene-conducting polymer electrochromic microsupercapacitors, Energy Storage Materials, 20, pp. 455-461, (2019)
  • [38] YANG L, ZHENG W, ZHANG P, Et al., MXene/CNTs films prepared by electrophoretic deposition for supercapacitor electrodes, Journal of Electroanalytical Chemistry, 830-831, pp. 1-6, (2018)
  • [39] RAJAVEL K, LUO S, WAN Y, Et al., 2D Ti<sub>3</sub>C<sub>2</sub>Tx MXene/polyvinylidene fluoride (PVDF) nanocomposites for attenuation of electromagnetic radiation with excellent heat dissipation, Composites Part A: Applied Science and Manufacturing, 129, (2020)
  • [40] HUANG Y, WU D, WANG J, Et al., Amphiphilic polymer promoted assembly of macroporous graphene/SnO<sub>2</sub> frameworks with tunable porosity for high-performance lithium storage, Small, 10, 11, pp. 2226-2232, (2014)