Qiu Yan, Wu Liang, Liu Sijun, Yu Wei
Advanced Rheology Institute, Department of Polymer Science and Engineering Frontiers Science Center for Transformative Molecules, Shanghai Jiao Tong University Shanghai, 200240, P. R. China.
J Mater Chem B. 2023 Jan 25;11(4):905-913. doi: 10.1039/d2tb01693a.
High performance hydrogels have essential applications in many fields such as tissue engineering and soft robot. Herein, we develop an impact resistant hydrogel composed of bicontinuous structures of polymer-hard phase and polymer-soft phase. This unique bicontinuous phase structure is formed by modulating various hydrogen bonding interactions. During loading, the polymer-hard phase is broken accompanied by the dissociation of hydrogen bonds to dissipate energy, while the polymer-soft phase distributes the load to avoid stress concentration, thus enabling the bicontinuous hydrogel to achieve excellent strength and toughness simultaneously. Furthermore, the fracture of hierarchical energy dissipation structures efficiently reduces impact strength and increases buffer time. Owing to the synergy of the bicontinuous phase structure and hierarchical energy dissipation, the resulting bicontinuous hydrogel remains intact even if it undergoes impact at a strain rate of ∼13 000 s. Based on these findings, it is expected that the bicontinuous hydrogel has a potential application in the field of articular cartilage repair.
高性能水凝胶在组织工程和软体机器人等许多领域都有重要应用。在此,我们开发了一种由聚合物硬相和聚合物软相的双连续结构组成的抗冲击水凝胶。这种独特的双连续相结构是通过调节各种氢键相互作用形成的。在加载过程中,聚合物硬相断裂并伴随着氢键的解离以耗散能量,而聚合物软相则分散载荷以避免应力集中,从而使双连续水凝胶能够同时实现优异的强度和韧性。此外,分级能量耗散结构的断裂有效地降低了冲击强度并增加了缓冲时间。由于双连续相结构和分级能量耗散的协同作用,所得的双连续水凝胶即使在应变率约为13000 s的冲击下仍保持完整。基于这些发现,预计双连续水凝胶在关节软骨修复领域具有潜在应用。