Pan Yu, Zheng Jin, Xu Yangyang, Chen Xiaogang, Yan Mengmeng, Li Jinlei, Zhao Xu, Feng Yanlai, Ma Yuhan, Ding Mengyuan, Wang Rongwu, He Jianxin
Research Institute of Textile and Clothing Industries, Zhongyuan University of Technology, Zhengzhou, Henan Province 450007, China.
Research Institute of Textile and Clothing Industries, Zhongyuan University of Technology, Zhengzhou, Henan Province 450007, China.
J Colloid Interface Sci. 2022 Dec 15;628(Pt A):829-839. doi: 10.1016/j.jcis.2022.07.144. Epub 2022 Jul 27.
Advanced thermal-insulation materials for human use in high-temperature and ultra-low-temperature environments have received extensive attention. However, facile synthesis of aerogels with excellent mechanical and thermal properties via freeze-drying or electrospinning alone is still challenging. We hypothesized that a polyimide aerogel with high mechanical strength and good thermal-insulation performance and suitability for various applications at high and low temperatures could be prepared facilely using a simple and novel preparation strategy that combines electrospinning, freeze-drying, and in situ thermal crosslinking.
Polyamideimide (PAI) nanofibers loaded with bismaleimide (BMI) were electrospun and dispersed into a polyamic acid aqueous solution. PAI/BMI-nanofiber-reinforced polyimide (IBNR-PI) aerogels with an interpenetrating network structure were prepared by freeze-drying and heat treatment.
The IBNR-PI aerogels possessed extremely low volume density (26 mg cm) and high porosity (94.92%). Most importantly, they showed high tensile strength and good compressive fatigue resistance with plastic deformation of only 7% after 1000 compression cycles. The aerogels also showed a significantly low thermal conductivity (30.06 mW m K) and excellent thermal insulation over a wide temperature range. Thus, the IBNR-PI aerogels are excellent candidates for thermal-insulation materials at high and low temperatures.
用于人类在高温和超低温环境中的先进隔热材料已受到广泛关注。然而,仅通过冷冻干燥或静电纺丝轻松合成具有优异机械和热性能的气凝胶仍然具有挑战性。我们假设可以使用一种简单新颖的制备策略轻松制备具有高机械强度、良好隔热性能且适用于高低温各种应用的聚酰亚胺气凝胶,该策略结合了静电纺丝、冷冻干燥和原位热交联。
将负载双马来酰亚胺(BMI)的聚酰胺酰亚胺(PAI)纳米纤维进行静电纺丝,并分散到聚酰胺酸水溶液中。通过冷冻干燥和热处理制备了具有互穿网络结构的PAI/BMI纳米纤维增强聚酰亚胺(IBNR-PI)气凝胶。
IBNR-PI气凝胶具有极低的体积密度(26毫克/立方厘米)和高孔隙率(94.92%)。最重要的是,它们表现出高拉伸强度和良好的抗压疲劳性,在1000次压缩循环后塑性变形仅为7%。这些气凝胶还表现出极低的热导率(30.06毫瓦/米·开尔文),并在很宽的温度范围内具有优异的隔热性能。因此,IBNR-PI气凝胶是高低温隔热材料的极佳候选者。