Department of Materials Science and Engineering, 1304 W. Green St., Urbana, IL 61801, USA.
Department of Bioengineering, University of Illinois at Urbana-Champaign, Urbana, IL, 61801, USA.
Chemistry. 2018 May 23;24(29):7345-7348. doi: 10.1002/chem.201801138. Epub 2018 Apr 30.
Low cost, high performance hydrolysable polymers are of great importance in biomedical applications and materials industries. While many applications require materials to have a degradation profile insensitive to external pH to achieve consistent release profiles under varying conditions, hydrolysable chemistry techniques developed so far have pH-dependent hydrolytic kinetics. This work reports the design and synthesis of a new type of hydrolysable polymer that has identical hydrolysis kinetics from pH 3 to 11. The unprecedented pH independent hydrolytic kinetics of the aryl ureas were shown to be related to the dynamic bond dissociation controlled hydrolysis mechanism; the resulting hindered poly(aryl urea) can be degraded with a hydrolysis half-life of 10 min in solution. More importantly, these fast degradable hindered aromatic polyureas can be easily prepared by addition polymerization from commercially available monomers and are resistant to hydrolysis in solid form for months under ambient storage conditions. The combined features of good stability in solid state and fast hydrolysis at various pH values is unprecedented in polyurea material, and will have implications for materials design and applications, such as sacrificial coatings and biomaterials.
低成本、高性能的可水解聚合物在生物医学应用和材料工业中具有重要意义。虽然许多应用需要材料具有不受外部 pH 值影响的降解特性,以在不同条件下实现一致的释放特性,但迄今为止开发的可水解化学技术具有依赖 pH 值的水解动力学。本工作报道了一种新型可水解聚合物的设计和合成,该聚合物在 pH 值为 3 到 11 之间具有相同的水解动力学。芳基脲的前所未有的 pH 独立水解动力学与动态键离解控制的水解机制有关;由此产生的受阻聚(芳基脲)可以在溶液中以 10 分钟的水解半衰期进行降解。更重要的是,这些快速可降解的受阻芳香族聚脲可以通过加成聚合从商业可得的单体容易地制备,并且在环境储存条件下在固体形式下数月都不易水解。在聚脲材料中,在固态下具有良好的稳定性和在各种 pH 值下快速水解的综合特性是前所未有的,这将对材料设计和应用产生影响,例如牺牲涂层和生物材料。