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多功能、超弹性且轻质的MXene/聚酰亚胺气凝胶。

Multifunctional, Superelastic, and Lightweight MXene/Polyimide Aerogels.

作者信息

Liu Ji, Zhang Hao-Bin, Xie Xi, Yang Rui, Liu Zhangshuo, Liu Yafeng, Yu Zhong-Zhen

机构信息

Beijing Key Laboratory of Advanced Functional Polymer Composites, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.

State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing, 100029, China.

出版信息

Small. 2018 Nov;14(45):e1802479. doi: 10.1002/smll.201802479. Epub 2018 Oct 7.

Abstract

2D transition metal carbides and nitrides (MXenes) have gained extensive attention recently due to their versatile surface chemistry, layered structure, and intriguing properties. The assembly of MXene sheets into macroscopic architectures is an important approach to harness their extraordinary properties. However, it is difficult to construct a freestanding, mechanically flexible, and 3D framework of MXene sheets owing to their weak intersheet interactions. Herein, an interfacial enhancement strategy to construct multifunctional, superelastic, and lightweight 3D MXene architectures by bridging individual MXene sheets with polyimide macromolecules is developed. The resulting lightweight aerogel exhibits superelasticity with large reversible compressibility, excellent fatigue resistance (1000 cycles at 50% strain), 20% reversible stretchability, and high electrical conductivity of ≈4.0 S m . The outstanding mechanical flexibility and electrical conductivity make the aerogel promising for damping, microwave absorption coating, and flexible strain sensor. More interestingly, an exceptional microwave absorption performance with a maximum reflection loss of -45.4 dB at 9.59 GHz and a wide effective absorption bandwidth of 5.1 GHz are achieved.

摘要

二维过渡金属碳化物和氮化物(MXenes)由于其多样的表面化学性质、层状结构和有趣的特性,近年来受到了广泛关注。将MXene片材组装成宏观结构是利用其非凡性能的重要途径。然而,由于MXene片材之间的层间相互作用较弱,难以构建独立的、机械柔性的三维MXene框架。在此,开发了一种界面增强策略,通过用聚酰亚胺大分子桥接单个MXene片材来构建多功能、超弹性和轻质的三维MXene结构。所得的轻质气凝胶表现出具有大可逆压缩性的超弹性、优异的抗疲劳性(在50%应变下1000次循环)、20%的可逆拉伸性和约4.0 S/m的高电导率。出色的机械柔韧性和导电性使气凝胶有望用于减震、微波吸收涂层和柔性应变传感器。更有趣的是,在9.59 GHz处实现了高达-45.4 dB的最大反射损耗和5.1 GHz的宽有效吸收带宽的优异微波吸收性能。

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