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通过定向结构实现的具有优异韧性的高离子阻隔水凝胶。

High ion barrier hydrogel with excellent toughness achieved by directional structures.

作者信息

Yang Zezhou, Zhao Zhiyu, Yang Dongsheng, Zhu Liangyu, Qiu Zirou, Wu Yifan, Lan Cheng, Jiang Wenchuan, Li Geng, Zhong Bin, Wei Jin, Liu Tao, Xie Heping

机构信息

State Key Laboratory of Intelligent Construction and Healthy Operation, Maintenance of Deep Underground Engineering, Institute of New Energy and Low-Carbon Technology, Sichuan University Chengdu 610065 Sichuan China

College of Polymer Science and Engineering, Sichuan University Chengdu 610065 Sichuan China.

出版信息

RSC Adv. 2024 Aug 30;14(38):27555-27564. doi: 10.1039/d4ra04822a. eCollection 2024 Aug 29.

Abstract

Owing to their nontoxicity, environmental friendliness, and high biocompatibility, physically cross-linked hydrogels have become popular research materials; however, their high water content and high free volume, along with the weak bonding interactions inherent to ordinary physically cross-linked hydrogels, limit their application in fields such as flexible devices, packaging materials, and substance transport regulation. Here, a structural barrier approach based on directional freezing-assisted salting out was proposed, and the directional structure significantly enhanced the barrier performance of the hydrogel. When the direction of substance diffusion was perpendicular to the pore channel structure of the directional freezing-PVA hydrogel (DFPVA), the Cl transmission rate was 57.2% for the uniform freezing-PVA hydrogel (UFPVA). By adjusting the concentration of the salting-out solution and the salting-out time, the crystallinity and crystal domain size of the hydrogel could be further changed, optimizing and regulating the barrier performance of the hydrogel, with the best Cl unit permeability being 36.02 mg mm per cm per day. Additionally, DFPVA had excellent mechanical properties (stress of 6.47 ± 1.04 MPa, strain of 625.85 ± 61.58%, toughness of 25.77 ± 3.72 MPa). Due to the barrier and mechanical properties of the direct structure, DFPVA is suitable as a drug carrier for slow drug release .

摘要

由于其无毒、环境友好和高生物相容性,物理交联水凝胶已成为热门的研究材料;然而,它们的高含水量和高自由体积,以及普通物理交联水凝胶固有的弱键相互作用,限制了它们在柔性器件、包装材料和物质传输调控等领域的应用。在此,提出了一种基于定向冷冻辅助盐析的结构阻隔方法,该定向结构显著增强了水凝胶的阻隔性能。当物质扩散方向垂直于定向冷冻聚乙烯醇水凝胶(DFPVA)的孔道结构时,均匀冷冻聚乙烯醇水凝胶(UFPVA)的氯离子传输速率为57.2%。通过调节盐析溶液的浓度和盐析时间,可以进一步改变水凝胶的结晶度和晶畴尺寸,优化和调控水凝胶的阻隔性能,最佳氯离子单位渗透率为每天每平方厘米36.02毫克·毫米。此外,DFPVA具有优异的力学性能(应力为6.47±1.04兆帕,应变率为625.85±61.58%,韧性为25.77±3.72兆帕)。由于这种定向结构的阻隔和力学性能,DFPVA适合作为药物缓释的载体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a79/11362914/9c30955df212/d4ra04822a-f1.jpg

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