Tibbitt Mark W, Kloxin April M, Sawicki Lisa, Anseth Kristi S
Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder, Colorado 80303 ; BioFrontiers Institute, University of Colorado Boulder, Boulder, Colorado 80303.
Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder, Colorado 80303 ; Howard Hughes Medical Institute, University of Colorado Boulder, Boulder, Colorado 80303.
Macromolecules. 2013 Apr 9;46(7):2785-92. doi: 10.1021/ma302522x.
The relationship between polymeric hydrogel microstructure and macroscopic properties is of specific interest to the materials science and polymer science communities for the rational design of materials for targeted applications. Specifically, research has focused on elucidating the role of network formation and connectivity on mechanical integrity and degradation behavior. Here, we compared the mechanical properties of chain and step polymerized, photodegradable hydrogels. Increased ductility, tensile toughness, shear strain to yield were observed in step polymerized hydrogels, as compared to the chain polymerized gels, indicating that increased homogeneity and network cooperativity in the gel backbone improves mechanical integrity. Furthermore, the ability to degrade the hydrogels in a controlled fashion with light was exploited to explore how hydrogel microstructure influences photodegradation and erosion. Here, the decreased network connectivity at the junction points in the step polymerized gels resulted in more rapid erosion. Finally, a relationship between the reverse gelation threshold and erosion rate was developed for the general class of photodegradable hydrogels. In all, these studies further elucidate the relationship between hydrogel formation and microarchitecture with macroscale behavior to facilitate the future design of polymer networks, degradable hydrogels, as well as photoresponsive materials as cell culture templates, drug delivery vehicles, responsive coatings, and anisotropic materials.
聚合物水凝胶微观结构与宏观性质之间的关系,对于材料科学和聚合物科学界合理设计用于特定应用的材料具有特殊意义。具体而言,研究集中于阐明网络形成和连通性对机械完整性和降解行为的作用。在此,我们比较了链式聚合和逐步聚合的可光降解水凝胶的力学性能。与链式聚合凝胶相比,逐步聚合水凝胶的延展性、拉伸韧性和屈服剪切应变增加,这表明凝胶主链中均一性和网络协同性的提高改善了机械完整性。此外,利用光以可控方式降解水凝胶的能力,来探索水凝胶微观结构如何影响光降解和侵蚀。在此,逐步聚合凝胶中连接点处网络连通性的降低导致了更快的侵蚀。最后,针对可光降解水凝胶这一类别,建立了反凝胶化阈值与侵蚀速率之间的关系。总之,这些研究进一步阐明了水凝胶形成和微观结构与宏观行为之间的关系,以促进聚合物网络、可降解水凝胶以及作为细胞培养模板、药物递送载体、响应性涂层和各向异性材料的光响应材料的未来设计。