Department of Materials Science and Engineering, Carnegie Mellon University, Pittsburgh, Pennsylvania 15213, United States.
Biomacromolecules. 2013 Jul 8;14(7):2162-70. doi: 10.1021/bm4002602. Epub 2013 Jun 7.
Synthetic biodegradable elastomers are a class of polymers that have demonstrated far-reaching utility as biomaterials for use in many medical applications. Biodegradable elastomers can be broadly classified into networks prepared by either step-growth or chain-growth polymerization. Each processing strategy affords distinct advantages in terms of capabilities and resulting properties of the network. This work describes the synthesis, processing, and characterization of cross-linked polyester networks based on Diels-Alder coupling reactions. Hyperbranched furan-modified polyester precursors based on poly(glycerol-co-sebacate) are coupled with bifunctional maleimide cross-linking agents. The chemical and thermomechanical properties of the elastomers are characterized at various stages of network formation. Experimental observations of gel formation are compared to theoretical predictions derived from Flory-Stockmayer relationships. This cross-linking strategy confers unique advantages in processing and properties including the ability to fabricate biodegradable reconfigurable covalent networks without additional catalysts or reaction byproducts. Reconfigurable biodegradable networks using Diels-Alder cycloaddition reactions permit the fabrication of shape-memory polymers with complex permanent geometries. Biodegradable elastomers based on polyester networks with molecular reconfigurability achieve vastly expanded properties and processing capabilities for potential applications in medicine and beyond.
合成可生物降解弹性体是一类聚合物,它们作为生物材料在许多医学应用中具有广泛的用途。可生物降解弹性体可广泛分为通过逐步增长或链增长聚合制备的网络。每种加工策略在网络的能力和最终性能方面都具有独特的优势。本工作描述了基于 Diels-Alder 偶联反应的交联聚酯网络的合成、加工和表征。基于聚(甘油-co-癸二酸)的超支化呋喃改性聚酯前体与双官能马来酰亚胺交联剂偶联。在网络形成的各个阶段对弹性体的化学和热机械性能进行了表征。凝胶形成的实验观察结果与 Flory-Stockmayer 关系得出的理论预测进行了比较。这种交联策略在加工和性能方面具有独特的优势,包括能够制造无需额外催化剂或反应副产物的可生物降解可重构共价网络。使用 Diels-Alder 环加成反应的可重构生物降解网络允许制造具有复杂永久几何形状的形状记忆聚合物。基于具有分子可重构性的聚酯网络的可生物降解弹性体实现了广泛扩展的性能和加工能力,有望在医学及其他领域得到应用。