Xie Yeping, Ye Fan, Chen Wenhua, Tang Jiahong, Liu Pengju
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University Chengdu 610065 China
College of Architecture and Environment, Sichuan University Chengdu 610065 China.
RSC Adv. 2020 Mar 24;10(20):11994-12003. doi: 10.1039/d0ra00942c. eCollection 2020 Mar 19.
Fabrication of microcellular polymer composite foam based on high-performance plastic is a promising strategy for preparing the lightweight, high-strength and multifunctional materials. Herein, we proposed a facile and green method to prepare microcellular polysulfone/carbon nanotube (PSU/CNTs) composite foams with segregated structure by combining solid-phase milling and supercritical carbon dioxide (scCO) foaming. The segregated PSU/CNTs foam with as low as 5.0 wt% CNT was provided with a good electrical conductivity of 5.2 S m and an acceptable electromagnetic interference shielding effectiveness (EMI SE) of 23.7 dB, respectively. Moreover, the segregated PSU/CNT foam exhibited an ultralow percolation threshold of 0.06 vol%. An absorption-dominant shielding feature was observed for segregated PSU/CNT foam, which could be attributed to the synergistic effect of the perfect CNT networks and the microcellular structure in PSU domains. In addition, benefitting from the inherent properties of the PSU matrix, foam density dropped to 0.69 g cm, and the material still possessed a high specific compression strength of 38.8 MPa cm g. Therefore, our work provided an insight into the preparation of lightweight, high-strength and multifunctional materials that might have great potential applications in aerospace and military areas.
基于高性能塑料制备微孔聚合物复合泡沫材料是制备轻质、高强度和多功能材料的一种很有前景的策略。在此,我们提出了一种简便且绿色的方法,通过结合固相研磨和超临界二氧化碳(scCO₂)发泡来制备具有分离结构的微孔聚砜/碳纳米管(PSU/CNTs)复合泡沫材料。含有低至5.0 wt% CNT的分离型PSU/CNTs泡沫材料分别具有5.2 S m的良好电导率和23.7 dB的可接受电磁干扰屏蔽效能(EMI SE)。此外,分离型PSU/CNT泡沫材料表现出0.06 vol% 的超低渗流阈值。观察到分离型PSU/CNT泡沫材料具有以吸收为主的屏蔽特性,这可归因于PSU区域中完美的CNT网络和微孔结构的协同效应。此外,受益于PSU基体的固有特性,泡沫密度降至0.69 g/cm³,且该材料仍具有38.8 MPa·cm³/g的高比压缩强度。因此,我们的工作为制备轻质、高强度和多功能材料提供了一种思路,这些材料在航空航天和军事领域可能具有巨大的潜在应用。