具有ph可调应力松弛和自愈特性的巯基-5-亚甲基吡咯酮水凝胶

Yanyan Zhou , Jiahui Yang , Zhiyuan Wang , Yiran Li , Ying Li
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引用次数: 1

摘要

含有通过共价键动态交联网络的水凝胶在学术界和技术界都引起了极大的关注。这种兴趣源于它们令人印象深刻的机械稳定性和独特的时空动力学特性。在用于制备水凝胶的各种类型的动态共价键中,5-甲基吡咯烷酮(5MP)和硫醇反应是最普遍的反应之一。鉴于其可靠性、效率和选择性,硫醇-5MP反应长期以来一直被认为是最有效的Micheal添加剂。在这项工作中,通过利用具有改进的稳定性和特异性的巯基-5MP迈克尔加成,可以容易地制备一种新型的动态水凝胶。值得注意的是,在制备过程中,可以通过调节pH来微调所得到的巯基-5MP水凝胶的机械特性。此外,与酸性条件(pH 6.5)下产生的水凝胶相比,在中性(pH 7.5)或碱性(pH 8.5)条件下配制的水凝胶表现出更强的应力松弛反应和优异的自修复能力。正如单分子力谱分析所揭示的,pH可调的机械性能归因于巯基-5MP键的pH依赖性动力学。这项工作展示了一种创新的方法来制作具有pH可调体积特性的动态水凝胶,突出了巯基-5MP键作为功能水凝胶材料设计的基本组成部分的多功能性。
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Thiol-5-methylene pyrrolones hydrogels with pH-tunable stress-relaxation and self-healing properties

Hydrogels containing dynamically crosslinked networks through covalent bonds have garnered substantial attention in both academia and technology sectors. This interest stems from their impressive mechanical stability and their unique spatiotemporal dynamic characteristics. Among the various type of dynamic covalent bonds used for preparation hydrogel, the 5-methylene pyrrolones (5MP) and thiol reaction stands out as one of the most prevalent. Given its reliability, efficiency and selectivity, thiol-5MP reaction has long been recognized as some of the most efficient Micheal additions. In this work, by utilizing thiol-5MP Michael addition with improved stability and specificity, a new type of dynamic hydrogel is easily prepared. Notably, the mechanical attributes of the resultant thiol-5MP hydrogels can be finely tuned by modulating the pH during their preparation process. Furthermore, hydrogels formulated under neutral (pH 7.5) or alkaline (pH 8.5) conditions display enhanced stress-relaxation response and superior self-healing capabilities compared to those generated under acidic conditions (pH 6.5). As revealed by single-molecule force spectroscopy assays, the pH-tunable mechanical properties are attributed to the pH-dependent dynamics of thiol-5MP bonds. This work showcases an innovative avenue for crafting dynamic hydrogels featuring pH-adjustable bulk characteristics, highlighting the versatility of thiol-5MP bonds as fundamental building blocks for the design of functional hydrogel materials.

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