Engineering Research Center of Dairy Quality and Safety Control Technology, Ministry of Education, College of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot010021, People's Republic of China.
College of Chemistry and Materials Science, Inner Mongolia Minzu University, Tongliao028000, China.
ACS Appl Mater Interfaces. 2023 Feb 15;15(6):7735-7746. doi: 10.1021/acsami.2c19113. Epub 2023 Feb 3.
In situ reactivation of hydrogels remains a long-standing key challenge in chemistry and materials science. Herein, we first report an ultraconvenient in situ renewable antibacterial hydrogel prepared via a facile physical contact-triggered strategy based on an ultrafast chlorine transfer pathway. We discover that the as-proposed hydrogel with a programmable 3D network cross-linked by noncovalent bonds and physical interactions can serve as a smart platform for selective active chlorine transfer at the hydrogel/hydrogel interface. Systematic experiments and density functional theory prove that the -halamine glycopolymers integrated into the hydrogel system work as a specific renewable biocide, permitting the final hydrogel to be recharged in situ within 1 min under ambient conditions. Due to its strength and durability, pathogen specificity, and biocompatibility, coupled with its rapid in situ reactivation, this antibacterial hydrogel holds great potential for in vivo biomedical use and circulating water disinfection. We envision this proposed strategy will pave a new avenue for the development of in situ renewable smart hydrogels for real-world applications.
原位再激活水凝胶仍然是化学和材料科学中长期存在的关键挑战。在此,我们首次报道了一种通过基于超快氯转移途径的简便物理接触触发策略制备的超方便原位可再生抗菌水凝胶。我们发现,所提出的具有可编程 3D 网络的水凝胶通过非共价键和物理相互作用交联,可以作为在水凝胶/水凝胶界面处选择性主动氯转移的智能平台。系统实验和密度泛函理论证明,整合到水凝胶系统中的 -卤胺糖聚合物作为一种特定的可再生杀生物剂发挥作用,允许最终的水凝胶在环境条件下在 1 分钟内原位再充电。由于其强度和耐用性、病原体特异性和生物相容性,以及其快速的原位再激活,这种抗菌水凝胶在体内生物医学应用和循环水消毒方面具有巨大的潜力。我们设想,这种提出的策略将为开发用于实际应用的原位可再生智能水凝胶开辟新途径。