材料科学
热导率
化学工程
铝
超临界流体
制作
盐(化学)
环境压力
气凝胶
醇盐
相(物质)
超临界干燥
熔盐
热的
比表面积
保温
电导率
电阻率和电导率
模数
钙钛矿(结构)
氧化铝
溶胶凝胶
弹性模量
热稳定性
无机化学
复合材料
氯化物
表面改性
过程(计算)
粘度
作者
Yu Ma,Hailong Zhang,Z G Zhu,Zihao Yang,Jinglong ZHANG,Xiaoyu Wu,Hailong Zhang,Hang Zhang,Hang Zhang
摘要
ABSTRACT Alumina aerogels are attractive for thermal insulation due to their ultralow thermal conductivity and excellent high‐temperature resistance, but the high cost of organic aluminum alkoxide precursors limits large‐scale use. Inorganic aluminum salts are low cost and stable but unsuitable for conventional supercritical or ambient pressure drying. Herein, aluminum chloride hexahydrate (AlCl 3 ·6H 2 O) with tert‐butanol/water cosolvent was employed to prepare alumina aerogels via vacuum freeze‐drying. The freeze‐dried aerogels were crack‐free with tunable properties. Increasing precursor concentration enhanced specific surface area (SSA) and mechanical strength, though with higher density and thermal conductivity. The minimum density and thermal conductivity are 0.066 g/cm 3 and 0.028 W/(m·K), whereas the maximum SSA and Young's modulus are 364.74 m 2 /g and 343.07 kPa. The aerogels maintained thermal conductivity below 0.190 W/(m·K) up to 1200°C, but at 1400°C phase transformation to α‐Al 2 O 3 caused severe skeleton coarsening and degraded thermal insulation. This study provides a potentially cost‐effective and efficient fabrication route for monolithic alumina aerogels.
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