Yang Jia-Cao, Wang Xiao-Jun, Zhang Gang, Wei Zhi-Mei, Long Sheng-Ru, Yang Jie
College of Polymer Science & Engineering, Sichuan University Chengdu 610065 China.
Analytical & Testing Center, Sichuan University Chengdu 610064 China
RSC Adv. 2020 Jun 2;10(35):20817-20826. doi: 10.1039/d0ra02705g. eCollection 2020 May 27.
Segregated conductive polymer composites have been proved to be outstanding electromagnetic interference shielding (EMI) materials at low filler loadings. However, due to the poor interfacial adhesion between the pure conductive filler layers and segregated polymer granules, the mechanical properties of the segregated composites are usually poor, which limit their application. Herein, a simple and effective approach, the partial dissolution method, has been proposed to fabricate segregated poly(arylene sulfide sulfone) (PASS)/graphene nanoplatelet (GNP) composites with superior EMI shielding effectiveness (SE) and high tensile strength. Morphology examinations revealed that the GNPs were restricted in the dissolved outer layer by the undissolved cores, and there was a strong interaction between the PASS/GNP layer and the pure PASS core. The resultant PASS/GNP composites showed excellent electrical conductivity (60.3 S m) and high EMI SE (41 dB) with only 5 wt% GNPs. More notably, the tensile strength of the PASS/GNPs prepared by partial dissolution reached 36.4 MPa, presenting 136% improvement compared to that of the conventional segregated composites prepared by mechanical mixing. The composites also exhibited high resistance to elevated temperatures and chemicals owing to the use of the special engineering polymer PASS as a matrix.
隔离型导电聚合物复合材料已被证明在低填料负载量下是出色的电磁干扰屏蔽(EMI)材料。然而,由于纯导电填料层与隔离型聚合物颗粒之间的界面粘附性差,隔离型复合材料的机械性能通常较差,这限制了它们的应用。在此,提出了一种简单有效的方法——部分溶解法,来制备具有优异电磁干扰屏蔽效能(SE)和高拉伸强度的隔离型聚(亚芳基硫醚砜)(PASS)/石墨烯纳米片(GNP)复合材料。形态学研究表明,石墨烯纳米片被未溶解的核限制在溶解的外层中,并且PASS/GNP层与纯PASS核之间存在强烈的相互作用。所得的PASS/GNP复合材料仅含5 wt%的石墨烯纳米片时就表现出优异的电导率(60.3 S/m)和高电磁干扰屏蔽效能(41 dB)。更值得注意 的是,通过部分溶解制备的PASS/GNP的拉伸强度达到36.4 MPa,与通过机械混合制备的传统隔离型复合材料相比提高了136%。由于使用特殊的工程聚合物PASS作为基体,该复合材料还表现出对高温和化学物质的高耐受性。