Thermal and Mechanical Performances of the Superflexible, Hydrophobic, Silica-Based Aerogel for Thermal Insulation at Ultralow Temperature

气凝胶 材料科学 热稳定性 热分解 热导率 复合材料 微观结构 傅里叶变换红外光谱 化学工程 保温 氮气 体积热力学 液氮 接触角 有机化学 热力学 图层(电子) 化学 工程类 物理
作者
Zhiyang Zhao,Yi Cui,Yong Kong,Jian Ren,Xing Jiang,Wenqian Yan,Mengyuan Li,Jinqiong Tang,Xueqiang Liu,Xiaodong Shen
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:13 (18): 21286-21298 被引量:74
标识
DOI:10.1021/acsami.1c02910
摘要

A superflexible hydrophobic silica-based aerogel (FHSA) was prepared via a facile sol–gel process and ambient pressure drying method. The FHSA was treated at different temperatures varying from −196 to 450 °C to evaluate its thermal and mechanical performances. The evolutions of the physical property, hydrophobicity, microstructure, pore structure, and chemical structure of the FHSA with the various treatment temperatures were investigated comprehensively. The structure of the FHSA did not show an obvious change after treatment in the liquid nitrogen. The bulk density of the FHSA increased from 0.047 to 0.077 g cm–3 when the thermal treatment temperature increased from 25 to 450 °C. The specific surface area and pore volume of the FHSA increased with the treatment temperature owing to the decomposition of the organic moieties. The Fourier transform infrared spectra showed that the methyl groups in the FHSA had excellent thermostability up to 400 °C. The water contact angles of the FHSA after treatment at −196, 25, 200, 300, 350, 400, and 450 °C were 131, 151, 162, 150, 132, 119, and 34°, respectively. The thermal conductivity of the FHSA at a low temperature of −10 °C was 0.022 W m–1 K–1. The reversible deformation rate of the FHSA was more than 80% within 100 compression cycles. After treatment in liquid nitrogen, the reversible deformation rate of the FHSA remained at 50%. The synthesis method of the FHSA is simple, the resulting FHSA showed good performance both in thermostability and flexibility, and it is promisingly applied for thermal insulation and sealing in ultralow-temperature environments.
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