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具有温度不变超弹性的分级蜂窝结构陶瓷纳米纤维气凝胶用于隔热

Hierarchical Cellular Structured Ceramic Nanofibrous Aerogels with Temperature-Invariant Superelasticity for Thermal Insulation.

作者信息

Dou Lvye, Zhang Xinxin, Cheng Xiaota, Ma Zongmin, Wang Xueqin, Si Yang, Yu Jianyong, Ding Bin

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Textiles , Donghua University , Shanghai 201620 , P. R. China.

College of Materials Science and Engineering , Donghua University , Shanghai 201620 , P. R. China.

出版信息

ACS Appl Mater Interfaces. 2019 Aug 14;11(32):29056-29064. doi: 10.1021/acsami.9b10018. Epub 2019 Aug 2.

Abstract

Silica aerogels are attractive for thermal insulation due to their low thermal conductivity and good heat resistance performance. However, the fabrication of silica aerogels with temperature-invariant superelasticity and ultralow thermal conductivity has remained extremely challenging. Herein, we designed and synthesized a hierarchical cellular structured silica nanofibrous aerogel by using electrospun SiO nanofibers (SNFs) and SiO nanoparticle aerogels (SNAs) as the matrix and SiO sol as the high-temperature nanoglue. This pathway leads to the intrinsically random deposited SNFs assembling into a fibrous cellular structure, and the SNAs are evenly distributed on the fibrous cell wall. The unique hierarchical cellular structure of the ceramic nanofibrous aerogels endows it with integrated performances of the ultralow density of ∼0.2 mg cm, negative Poisson's ratio, ultralow thermal conductivity (23.27 mW m K), temperature-invariant superelasticity from -196 to 1100 °C, and editable shapes on a large scale. These favorable multifeatures present the aerogels ideal for thermal insulation in industrial, aerospace, and even extreme environmental conditions.

摘要

由于其低导热性和良好的耐热性能,二氧化硅气凝胶在隔热方面具有吸引力。然而,制备具有温度不变超弹性和超低导热性的二氧化硅气凝胶仍然极具挑战性。在此,我们以静电纺丝的SiO纳米纤维(SNFs)和SiO纳米颗粒气凝胶(SNAs)为基质,SiO溶胶为高温纳米胶水,设计并合成了一种分级多孔结构的二氧化硅纳米纤维气凝胶。这种方法使本质上随机沉积的SNFs组装成纤维多孔结构,且SNAs均匀分布在纤维细胞壁上。陶瓷纳米纤维气凝胶独特的分级多孔结构赋予其一系列综合性能,包括约0.2 mg cm的超低密度、负泊松比、超低导热性(23.27 mW m K)、从-196至1100 °C的温度不变超弹性以及大规模可编辑形状。这些优异的多功能特性使气凝胶成为工业、航空航天甚至极端环境条件下隔热的理想材料。

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