自愈水凝胶
分子间力
动态力学分析
背景(考古学)
变硬
材料科学
应力松弛
聚合物
非共价相互作用
共价键
拉伤
粘度
化学工程
氢键
化学
纳米技术
高分子化学
复合材料
分子
有机化学
工程类
生物
医学
古生物学
蠕动
内科学
作者
Rachel C. Ollier,Matthew J. Webber
出处
期刊:Biomacromolecules
[American Chemical Society]
日期:2024-06-07
卷期号:25 (7): 4406-4419
被引量:10
标识
DOI:10.1021/acs.biomac.4c00450
摘要
Mechanical stimuli such as strain, force, and pressure are pervasive within and beyond the human body. Mechanoresponsive hydrogels have been engineered to undergo changes in their physicochemical or mechanical properties in response to such stimuli. Relevant responses can include strain-stiffening, self-healing, strain-dependent stress relaxation, and shear rate-dependent viscosity. These features are a direct result of dynamic bonds or noncovalent/physical interactions within such hydrogels. The contributions of various types of bonds and intermolecular interactions to these behaviors are important to more fully understand the resulting materials and engineer their mechanoresponsive features. Here, strain-stiffening in carboxymethylcellulose hydrogels cross-linked with pendant dynamic-covalent boronate esters using tannic acid is studied and modulated as a function of polymer concentration, temperature, and effective cross-link density. Furthermore, these materials are found to exhibit self-healing and strain-memory, as well as strain-dependent stress relaxation and shear rate-dependent changes in gel viscosity. These features are attributed to the dynamic nature of the boronate ester cross-links, interchain hydrogen bonding and bundling, or a combination of these two intermolecular interactions. This work provides insight into the interplay of such interactions in the context of mechanoresponsive behaviors, particularly informing the design of hydrogels with tunable strain-stiffening. The multiresponsive and tunable nature of this hydrogel system therefore presents a promising platform for a variety of applications.
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