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具有轻质性、超弹性、导电性和阻燃性的 3D 多层纳米石墨烯/陶瓷超材料。

Flyweight, Superelastic, Electrically Conductive, and Flame-Retardant 3D Multi-Nanolayer Graphene/Ceramic Metamaterial.

机构信息

School of Civil Engineering and Mechanics, Lanzhou University, Lanzhou, 730000, P. R. China.

Key Laboratory of Mechanics on Disaster and Environment in Western China Lanzhou University, The Ministry of Education of China, Lanzhou, 730000, P. R. China.

出版信息

Adv Mater. 2017 Jul;29(28). doi: 10.1002/adma.201605506. Epub 2017 May 29.

Abstract

A ceramic/graphene metamaterial (GCM) with microstructure-derived superelasticity and structural robustness is achieved by designing hierarchical honeycomb microstructures, which are composited with two brittle constituents (graphene and ceramic) assembled in multi-nanolayer cellular walls. Attributed to the designed microstructure, well-interconnected scaffolds, chemically bonded interface, and coupled strengthening effect between the graphene framework and the nanolayers of the Al O ceramic (NAC), the GCM demonstrates a sequence of multifunctional properties simultaneously that have not been reported for ceramics and ceramics-matrix-composite structures, such as flyweight density, 80% reversible compressibility, high fatigue resistance, high electrical conductivity, and excellent thermal-insulation/flame-retardant performance simultaneously. The 3D well-ordered graphene aerogel templates are strongly coupled with the NAC by the chemically bonded interface, exhibiting mutual strengthening, compatible deformability, and a linearly dependent relationship between the density and Young's modulus. Considerable size effects of the ceramic nanolayers on the mechanical properties are revealed in these ceramic-based metamaterials. The designed hierarchical honeycomb graphene with a fourth dimensional control of the ceramic nanolayers on new ways to scalable fabrication of advanced multifunctional ceramic composites with controllable design suggest a great potential in applications of flexible conductors, shock/vibration absorbers, thermal shock barriers, thermal insulation/flame-retardant skins, and porous microwave-absorbing coatings.

摘要

通过设计具有分层蜂窝结构的微观结构,实现了具有微观结构衍生超弹性和结构鲁棒性的陶瓷/石墨烯超材料(GCM),该结构由两种脆性成分(石墨烯和陶瓷)复合而成,组装在多层蜂窝壁中。由于设计的微观结构、良好的互联支架、化学键合界面以及石墨烯骨架和 Al2O3 陶瓷纳米层(NAC)之间的耦合强化效应,GCM 同时展示了一系列多功能特性,这些特性在陶瓷和陶瓷基复合材料结构中都没有报道过,例如超轻密度、80%的可压缩性、高耐疲劳性、高导电性和出色的隔热/阻燃性能。3D 有序石墨烯气凝胶模板通过化学键合界面与 NAC 紧密结合,表现出相互强化、兼容的可变形性以及密度和杨氏模量之间的线性依赖关系。在这些基于陶瓷的超材料中,揭示了陶瓷纳米层对机械性能的显著尺寸效应。通过对陶瓷纳米层的第四维控制设计的分层蜂窝状石墨烯,为可扩展制造具有可控设计的先进多功能陶瓷复合材料提供了新途径,在柔性导体、冲击/振动吸收器、热冲击屏障、隔热/阻燃表皮以及多孔微波吸收涂层等应用方面具有巨大的潜力。

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