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Double network hydrogels based on semi-rigid polyelectrolyte physical networks

机译:基于半刚性聚电解质物理网络的双网络水凝胶

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Applying the double network principle to develop tough hydrogels with different polymer chemistries is important for the potential application of hydrogel materials. Synthesis of the two interpenetrated networks with contrasting structure and properties required for double networks usually involves a two-step polymerization process. In this work, we present a new method to synthesize tough double network hydrogels by post-physical crosslinking of linear semi-rigid polyelectrolytes entrapped in a chemically crosslinked neutral network. Owing to their semi-rigid structure, the linear polyelectrolytes form a brittle physical network above their overlap concentration in multi-valent ZrCl2O ion solutions without macroscopic phase separation within the flexible neutral network. The double network hydrogels thus prepared exhibit high modulus (similar to 1.7 MPa), strength (similar to 1.3 MPa), fracture strain (similar to 7.3), and strain energy density (similar to 5.9 MJ m(-3)), while containing over 80% water. These materials also exhibit modest self-healing ability (similar to 51% after 30 minutes), demonstrating an additional benefit of a physical sacrificial network. This method is simpler than the conventional two-step polymerization and could be applied to develop tough hydrogels from rigid polyelectrolytes, including biopolymers such as DNA, HA, and chondroitin sulfate.
机译:应用双网络原理与不同的聚合物化学产生坚韧的水凝胶对于水凝胶材料的潜在应用是重要的。两个具有对比结构的互连网络的合成通常涉及两步聚合过程。在这项工作中,我们提出了一种通过在化学交联中性网络中捕获的线性半刚性聚电解质的后物理交联来合成坚韧的双网络水凝胶的新方法。由于它们的半刚性结构,线性聚电解质在多价ZrCl2O离子溶液中形成脆性物理网络,在多价ZrCl2O离子溶液中没有柔性中性网络内的宏观相分离。由此制备的双网络水凝胶表现出高模量(类似于1.7MPa),强度(类似于1.3MPa),断裂菌株(类似于7.3),以及应变能密度(类似于5.9MJ m(-3)),同时含有超过80%的水。这些材料还表现出适度的自我愈合能力(在30分钟后类似的51%),展示了物理牺牲网络的额外益处。该方法比常规的两步聚合更简单,并且可以应用于从刚性聚电解质的强硬水凝胶,包括生物聚合物,例如DNA,HA和硫酸软骨素。

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