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通过可调泊松比3D打印具有高抗压弹性和拉伸伸长率的分级银纳米线气凝胶

3D Printing Hierarchical Silver Nanowire Aerogel with Highly Compressive Resilience and Tensile Elongation through Tunable Poisson's Ratio.

作者信息

Yan Pengli, Brown Emery, Su Qing, Li Jun, Wang Jian, Xu Changxue, Zhou Chi, Lin Dong

机构信息

Department of Industrial and Manufacturing Systems Engineering, Kansas State University, Manhattan, KS, 66506, USA.

Department of Chemistry, Kansas State University, Manhattan, KS, 66506, USA.

出版信息

Small. 2017 Oct;13(38). doi: 10.1002/smll.201701756. Epub 2017 Aug 18.

Abstract

Metallic aerogels have attracted intense attention due to their superior properties, such as high electrical conductivity, ultralow densities, and large specific surface area. The preparation of metal aerogels with high efficiency and controllability remains challenge. A 3D freeze assembling printing technique integrated with drop-on-demand inkjet printing and freeze casting are proposed for metallic aerogels preparation. This technique enables tailoring both the macrostructure and microstructure of silver nanowire aerogels (SNWAs) by integrating programmable 3D printing and freeze casting, respectively. The density of the printed SNWAs is controllable, which can be down to 1.3 mg cm . The ultralight SNWAs reach high electrical conductivity of 1.3 S cm and exhibit excellent compressive resilience under 50% compressive strain. Remarkably, the printing methodology also enables tuning aerogel architectures with designed Poisson's ratio (from negative to positive). Moreover, these aerogel architechtures with tunable Poisson's ratio present highly electromechanical stability under high compressive and tensile strain (both strain up to 20% with fully recovery).

摘要

金属气凝胶因其优异的性能,如高电导率、超低密度和大比表面积而备受关注。高效且可控地制备金属气凝胶仍然是一项挑战。本文提出了一种将按需滴墨喷墨打印与冷冻铸造相结合的3D冷冻组装打印技术来制备金属气凝胶。该技术分别通过集成可编程3D打印和冷冻铸造,能够定制银纳米线气凝胶(SNWAs)的宏观结构和微观结构。打印的SNWAs密度可控,可低至1.3 mg/cm³。这种超轻的SNWAs具有1.3 S/cm的高电导率,并且在50%的压缩应变下表现出优异的压缩弹性。值得注意的是,这种打印方法还能够调整气凝胶结构的泊松比(从负到正)。此外,这些具有可调泊松比的气凝胶结构在高压缩和拉伸应变下(应变高达20%且完全恢复)表现出高度的机电稳定性。

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