Zhang Chengfeng, Tang Zhenghai, An Xinglong, Fang Shifeng, Wu Siwu, Guo Baochun
Department of Polymer Materials and Engineering, South China University of Technology, Guangzhou 510640, P. R. China.
ACS Appl Mater Interfaces. 2021 May 26;13(20):24154-24163. doi: 10.1021/acsami.1c04802. Epub 2021 May 12.
Electrically and thermally conductive polymer composites are extensively used in our daily life. It is of great significance to fulfill the conductivity requirement while maintaining desirable mechanical performance. An efficient solution to achieve this goal is to construct segregated structures in polymer composites by confining fillers into the interstitial areas among polymer domains. Thus far, it still remains a challenge to create segregated structures in cross-linked polymeric networks. Herein, we report a facile methodology to construct segregated structures in sulfur-cured rubbers using an industrially accessible process toward robust, flexible, highly conductive elastomer composites. Specifically, natural rubber granules (NR-RGs) with reactive di- and polysulfides on the surface are fabricated and then mixed with NR gum, carbon nanotubes (CNTs), and curing additives, followed by compression molding to yield two-phase separate composites. In the composites, CNTs are selectively dispersed in the continuous NR phase due to the volume exclusion effect caused by the separate NR-RG phase, leading to overwhelming electrical conductivity compared to the counterparts with randomly dispersed CNTs. In addition, NR-RGs can serve as novel reinforcement for NR, imparting the composites with remarkably improved modulus and retained stretchability. The simultaneously improved electrical conductivity and mechanical properties are due to the strong interfacial adhesion between the NR matrix and NR-RGs, as the di- and polysulfides on the surface of NR-RGs can participate in the cross-linking reactions of NR gum and enable the establishment of covalent bonding across the interfaces. The universality of this approach in preparing segregated composites with a combination of high conductivities and robust mechanical properties is demonstrated using other diene rubbers as the matrix and boron nitride as the filler.
导电和导热聚合物复合材料在我们的日常生活中被广泛使用。在保持理想机械性能的同时满足导电性要求具有重要意义。实现这一目标的有效解决方案是通过将填料限制在聚合物域之间的间隙区域来构建聚合物复合材料中的隔离结构。到目前为止,在交联聚合物网络中创建隔离结构仍然是一个挑战。在此,我们报告了一种简便的方法,通过工业上可行的工艺在硫磺硫化橡胶中构建隔离结构,以制备坚固、柔性、高导电的弹性体复合材料。具体而言,制备表面带有反应性二硫化物和多硫化物的天然橡胶颗粒(NR-RGs),然后将其与天然橡胶胶、碳纳米管(CNTs)和硫化添加剂混合,随后通过模压成型得到两相分离的复合材料。在复合材料中,由于单独的NR-RG相引起的体积排阻效应,CNTs选择性地分散在连续的天然橡胶相中,与CNTs随机分散的对应物相比,导致导电性大幅提高。此外,NR-RGs可以作为天然橡胶的新型增强剂,赋予复合材料显著提高的模量和保留的拉伸性。同时提高的导电性和机械性能归因于天然橡胶基体与NR-RGs之间的强界面粘附力,因为NR-RGs表面的二硫化物和多硫化物可以参与天然橡胶胶的交联反应,并能够在界面处建立共价键。使用其他二烯橡胶作为基体和氮化硼作为填料,证明了这种方法在制备具有高导电性和坚固机械性能组合的隔离复合材料方面的通用性。