超临界干燥
化学工程
材料科学
聚合物
气凝胶
抗压强度
环境友好型
三聚氰胺树脂
铸造
原位聚合
韧性
聚合
极限抗拉强度
保温
毛细管作用
模数
热解
抗弯强度
溶剂
介孔材料
微型多孔材料
复合材料
纳米复合材料
比表面积
水溶液
弹性模量
可燃性
热塑性塑料
环境污染
同种类的
表面张力
作者
Ting Wang,Jin Xu,Ying-Jiao Zhan,Lei He,Zhi-Cheng Fu,Jinni Deng,Wenli An,Haibo Zhao,Ming‐Jun Chen
标识
DOI:10.1016/j.ijbiomac.2024.132811
摘要
Atmospheric drying method for fabricating aerogels is considered the most promising way for casting aerogels on a large scale. However, the organic solvent exchange, remaining environmental pollution risk, is a crucial step in mitigating the impact of surface tension during the atmospheric drying process, especially for wet gel formed through the alkoxy-derived sol-gel process, such as melamine-formaldehyde resin (MF) aerogel. Herein, a tough polymer-assisted in situ polymerization was proposed to fabricate MF resin aerogel with a combination of mechanical toughness and strength, enabling it to withstand the capillary force during water evaporation. The monolithic MF resin aerogel through the sol-gel method can be directly prepared without additional network strengthening or organic solvent exchange. The resulting MF resin aerogel exhibits a homogeneous as well as hierarchical structure with macropores and mesopores (~6 μm and ~5 nm), high compressive modulus of 31.8 MPa, self-extinguishing property, and high-temperature thermal insulation with 97 % heat decrease for butane flame combustion. This work presents a straightforward and environmentally friendly method for fabricating MF resin aerogels with nanostructures and excellent performance in open conditions, exhibiting various applications.
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