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可光降解的聚丙烯酰胺缠结聚合物能够对高强度、低滞后水凝胶中的链增长进行时空控制。

Photodegradable polyacrylamide tanglemers enable spatiotemporal control over chain lengthening in high-strength and low-hysteresis hydrogels.

作者信息

Lee Joshua S, Kirkpatrick Bruce E, Dhand Abhishek P, Hibbard Lea Pearl, Nelson Benjamin R, Skillin Nathaniel P, Johnson Makayla C, Batan Dilara, Fairbanks Benjamin D, White Timothy J, Bowman Christopher N, Burdick Jason A, Anseth Kristi S

机构信息

Department of Chemical and Biological Engineering, University of Colorado Boulder, Boulder, USA.

BioFrontiers Institute, University of Colorado Boulder, Boulder, USA.

出版信息

J Mater Chem B. 2025 Jan 15;13(3):894-903. doi: 10.1039/d4tb02149e.

Abstract

Covalent hydrogel networks suffer from a stiffness-toughness conflict, where increased crosslinking density enhances the modulus of the material but also leads to embrittlement and diminished extensibility. Recently, strategies have been developed to form highly entangled hydrogels, colloquially referred to as tanglemers, by optimizing polymerization conditions to maximize the density and length of polymer chains and minimize the crosslinker concentration. It is challenging to assess entanglements in crosslinked networks beyond approximating their theoretical contribution to mechanical properties; thus, in this work, we synthesize and characterize polyacrylamide tanglemers using a photolabile crosslinker, which allows for direct assessment of covalent trapping of entanglements under tension. Further, this chemistry allows tuning of the modulus by crosslink photocleavage (from tensile modulus () = 100 kPa to <25 kPa). Beyond cleavage of crosslinks, we demonstrate that even non-degradable tanglemer formulations can be photo-softened and completely degraded through Fe-mediated oxidation of the polyacrylamide backbone. While both photodegradation methods are useful for spatial patterning and result in softer gels with reduced fracture strength, only crosslink photocleavage improves gel extensibility light-induced chain lengthening ( = 700% to >1500%). Crosslink photocleavage in tanglemers also affords significant control over localized swelling and diffusivity. In sum, we introduce a simple and user-directed approach for probing entanglements and asserting spatiotemporal control over stress-strain responses and small molecule diffusivity in polyacrylamide tanglemers, suggesting a multitude of potential soft matter applications including controlled release and tunable bioadhesive interfaces.

摘要

共价水凝胶网络存在刚度-韧性冲突,即交联密度增加会提高材料的模量,但也会导致脆化和延展性降低。最近,人们开发了一些策略,通过优化聚合条件来形成高度缠结的水凝胶,通俗地称为缠结聚合物,以最大化聚合物链的密度和长度,并最小化交联剂浓度。除了近似缠结对机械性能的理论贡献外,评估交联网络中的缠结具有挑战性;因此,在这项工作中,我们使用光不稳定交联剂合成并表征了聚丙烯酰胺缠结聚合物,这使得在张力下能够直接评估缠结的共价捕获。此外,这种化学方法可以通过交联光裂解来调节模量(从拉伸模量()=100 kPa降至<25 kPa)。除了交联裂解外,我们还证明,即使是不可降解的缠结聚合物配方也可以通过铁介导的聚丙烯酰胺主链氧化进行光软化和完全降解。虽然两种光降解方法都可用于空间图案化,并产生具有降低断裂强度的较软凝胶,但只有交联光裂解能改善凝胶的延展性(光诱导链延长(=700%至>1500%))。缠结聚合物中的交联光裂解还能对局部溶胀和扩散率进行显著控制。总之,我们引入了一种简单且用户可指导的方法,用于探测缠结,并对聚丙烯酰胺缠结聚合物中的应力-应变响应和小分子扩散率进行时空控制,这表明了许多潜在的软物质应用,包括控释和可调谐生物粘附界面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a6b/11626382/d5956ebceb28/d4tb02149e-f1.jpg

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