Wu Hanshu, Shi Yunping, Lin Ting-Chih, Abdullah Ayesha, Bockstaller Michael R, Matyjaszewski Krzysztof
Chemistry Department, Carnegie Mellon University, 4400 Fifth Avenue, Pittsburgh, Pennsylvania 15213, United States.
Department of Materials Science and Engineering, Carnegie Mellon University, 5000 Forbes Avenue, Pittsburgh, Pennsylvania 15213, United States.
ACS Macro Lett. 2025 Mar 7;14(3):371-376. doi: 10.1021/acsmacrolett.5c00036.
Brush particles, hybrid materials consisting of polymer chains tethered to particle surfaces, offer tunable properties that make them promising candidates for advanced functional materials. This study investigated the role of chain dispersity in the viscoelastic self-healing of poly (methyl acrylate) (PMA)-based brush particle solids. Increasing the molecular weight dispersity of grafted chains significantly enhanced both strain-to-fracture and toughness of brush particle solids, while the elastic modulus and glass transition temperature were independent of chain dispersity. Cut-and-adhere testing revealed a significant acceleration of the rate of toughness recovery in high-dispersity systems as compared to low-dispersity analogs for which toughness recovery markedly lagged the recovery of Young's modulus. The results suggest that structure and property recovery in brush particle solids are sensitive to the dynamical heterogeneity of brush canopies and highlight the role of molecular weight dispersity as a design parameter to enable hybrid materials with advanced self-healing ability.
刷状颗粒是由连接在颗粒表面的聚合物链组成的杂化材料,具有可调节的特性,这使其成为先进功能材料的有潜力的候选者。本研究调查了链分散性在基于聚(丙烯酸甲酯)(PMA)的刷状颗粒固体的粘弹性自修复中的作用。增加接枝链的分子量分散性显著提高了刷状颗粒固体的断裂应变和韧性,而弹性模量和玻璃化转变温度与链分散性无关。切割并粘贴测试表明,与低分散性类似物相比,高分散性体系中韧性恢复速率显著加快,低分散性类似物的韧性恢复明显滞后于杨氏模量的恢复。结果表明,刷状颗粒固体中的结构和性能恢复对刷状冠层的动态不均匀性敏感,并突出了分子量分散性作为设计参数的作用,以实现具有先进自修复能力的杂化材料。