Liu Yingjun, Tang Zhenghai, Wu Siwu, Guo Baochun
Department of Polymer Materials and Engineering, South China University of Technology, Guangzhou 510640, People's Republic of China.
ACS Macro Lett. 2019 Feb 19;8(2):193-199. doi: 10.1021/acsmacrolett.9b00012. Epub 2019 Jan 31.
Vitrimers are a class of covalently cross-linked polymers that have drawn great attention due to their fascinating properties such as malleability and reprocessability. The state of art approach to improve their mechanical properties is the addition of fillers, which, however, greatly restricts the chain mobility and impedes network topology rearrangement, thereby deteriorating the dynamic properties of vitrimer composites. Here, we demonstrate that the integration of sacrificial bonds into a vitrimeric network can remarkably enhance the overall mechanical properties while facilitating network rearrangement. Specifically, commercially available epoxidized natural rubber is covalently cross-linked with sebacic acid and simultaneously grafted with N-acetylglycine (NAg) through the chemical reaction between epoxy and carboxyl groups, generating exchangeable β-hydroxyl esters and introducing amide functionalities into the networks. The hydrogen bonds arising from amide functionalities act in a sacrificial and reversible manner, that is, preferentially break prior to the covalent framework and undergo reversible breaking and reforming to dissipate mechanical energy under external load, which leads to a rarely achieved combination of high strength, modulus, and toughness. The topology rearrangement of the cross-linked networks can be accomplished through transesterification reactions at high temperatures, which is accelerated with the increase of grafting NAg amount due to the dissociation of transient hydrogen bonds and increase of the ester concentration in the system.
热致互穿聚合物网络材料是一类共价交联聚合物,因其具有诸如延展性和可再加工性等迷人特性而备受关注。目前改善其机械性能的方法是添加填料,然而,这极大地限制了链的流动性并阻碍了网络拓扑重排,从而恶化了热致互穿聚合物网络复合材料的动态性能。在此,我们证明将牺牲键整合到热致互穿聚合物网络中可以显著提高整体机械性能,同时促进网络重排。具体而言,市售的环氧化天然橡胶与癸二酸共价交联,并通过环氧基与羧基之间的化学反应同时接枝N - 乙酰甘氨酸(NAg),生成可交换的β - 羟基酯并将酰胺官能团引入网络中。由酰胺官能团产生的氢键以牺牲和可逆的方式起作用,即,在共价骨架之前优先断裂,并在外部负载下经历可逆的断裂和重新形成以耗散机械能,这导致了很少能实现的高强度、模量和韧性的组合。交联网络的拓扑重排可以通过高温下的酯交换反应来完成,由于瞬态氢键的解离和体系中酯浓度的增加,随着接枝NAg量的增加,酯交换反应加速。