4.7 Article

Environmentally Tough and Stretchable MXene Organohydrogel with Exceptionally Enhanced Electromagnetic Interference Shielding Performances

期刊

NANO-MICRO LETTERS
卷 14, 期 1, 页码 -

出版社

SHANGHAI JIAO TONG UNIV PRESS
DOI: 10.1007/s40820-022-00819-3

关键词

Electromagnetic interference shielding; MXene organohydrogel; Stretchable conductive film; Anti-drying ability; Low-temperature tolerance

资金

  1. Beijing Natural Science Foundation [2212033]
  2. National Natural Science Foundation of China [51971008, U1832138, 51731002, 51671010]
  3. Fundamental Research Funds for the Central Universities

向作者/读者索取更多资源

Organohydrogels have potential applications in shielding electromagnetic radiation interference. However, they often suffer from poor environmental stability and stretching-induced performance degradation. In this study, MXene organohydrogel was prepared with improved stability and stretching-enhanced interference effectiveness, making it suitable for deformable and wearable electronic devices.
Conductive hydrogels have potential applications in shielding electromagnetic (EM) radiation interference in deformable and wearable electronic devices, but usually suffer from poor environmental stability and stretching-induced shielding performance degradation. Although organohydrogels can improve the environmental stability of materials, their development is at the expense of reducing electrical conductivity and thus weakening EM interference shielding ability. Here, a MXene organohydrogel is prepared which is composed of MXene network for electron conduction, binary solvent channels for ion conduction, and abundant solvent-polymer-MXene interfaces for EM wave scattering. This organohydrogel possesses excellent anti-drying ability, low-temperature tolerance, stretchability, shape adaptability, adhesion and rapid self-healing ability. Two effective strategies have been proposed to solve the problems of current organohydrogel shielding materials. By reasonably controlling the MXene content and the glycerol-water ratio in the gel, MXene organohydrogel can exhibit exceptionally enhanced EM interference shielding performances compared to MXene hydrogel due to the increased physical cross-linking density of the gel. Moreover, MXene organohydrogel shows attractive stretching-enhanced interference effectiveness, caused by the connection and parallel arrangement of MXene nanosheets. This well-designed MXene organohydrogel has potential applications in shielding EM interference in deformable and wearable electronic devices.

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