Department of Mechanical and Industrial Engineering, University of Toronto, Canada.
BASF Corporation, 450 Clark Drive, Budd Lake, NJ 07828, United States.
Adv Colloid Interface Sci. 2022 Jun;304:102646. doi: 10.1016/j.cis.2022.102646. Epub 2022 Mar 21.
With the rapid advancements in technology and growing aerospace applications, there is a need for effective low-weight and thermally insulating materials. Aerogels are known for their ultra-lightweight and they are highly porous materials with nanopores in a range of 2 to 50 nm with very low thermal conductivity values. However, due to hygroscopic nature and brittleness, aerogels are not used commercially and in daily life. To enhance the mechanical and hydrophobic properties, reinforcement materials such as styrene, cyanoacrylates, epoxy along with hydroxyl, amines, vinyl groups are added to the surface. The addition of organic materials resulted in lower service temperatures which reduce its potential applications. Polyimides (PI) are commonly used in engine applications due to their suitable stability at high temperatures along with excellent mechanical properties. Previous research on polyimide aerogels reported high flexibility or even foldability. However, those works' strategy was mainly limited to altering the backbone chemistry of polyimide aerogels by changing either the monomer's compositions or the chemical crosslinker. This work aims to summarize, categorize, and highlight the recent techniques for improving and tailoring properties of polyimide aerogels followed by the recent advancements in their applications.
随着技术的快速进步和航天应用的不断增长,人们需要有效的轻质和隔热材料。气凝胶以其超轻量而闻名,它们是具有纳米孔的高度多孔材料,孔径范围为 2 至 50nm,热导率非常低。然而,由于吸湿性和脆性,气凝胶在商业和日常生活中并未得到应用。为了提高机械性能和疏水性,通常会在气凝胶表面添加苯乙烯、氰基丙烯酸酯、环氧树脂以及羟基、胺基、乙烯基等增强材料。有机材料的添加导致使用温度降低,从而限制了其潜在应用。聚酰亚胺(PI)由于其在高温下的稳定性以及优异的机械性能,常用于发动机应用。先前关于聚酰亚胺气凝胶的研究报道称,其具有高柔韧性甚至可折叠性。然而,这些工作的策略主要局限于通过改变单体组成或化学交联剂来改变聚酰亚胺气凝胶的骨架化学。本工作旨在总结、分类和突出介绍改善聚酰亚胺气凝胶性能的最新技术,并重点介绍其在应用方面的最新进展。