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混合颗粒水凝胶:结合复合材料和微凝胶以实现更广泛的材料性能范围。

Hybrid granular hydrogels: combining composites and microgels for extended ranges of material properties.

作者信息

Wyss Céline Samira, Karami Peyman, Bourban Pierre-Etienne, Pioletti Dominique P

机构信息

Laboratory for Processing of Advanced Composites (LPAC), Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015, Lausanne, Switzerland.

Laboratory of Biomechanical Orthopedics (LBO), Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015, Lausanne, Switzerland.

出版信息

Soft Matter. 2020 Apr 15;16(15):3769-3778. doi: 10.1039/d0sm00213e.

DOI:10.1039/d0sm00213e
PMID:32239014
Abstract

Developing hydrogels with optimal properties for specific applications is challenging as most of these properties, such as toughness, stiffness, swelling or deformability, are interrelated. The improvement of one property usually comes at the cost of another. In order to decouple the interdependence between these properties and to extend the range of material properties for hydrogels, we propose a strategy that combines composite and microgel approaches. The study focuses first on tailoring the swelling performance of hydrogels while minimally affecting other properties. The underlying principle is to partially substitute some of the hydrogels with pre-swollen microgels composed of the same materials. Swelling reductions up to 45% were obtained. Those granular hydrogels were then reinforced with nano-fibrillated cellulose fibres obtaining hybrid granular materials to improve their toughness and to further reduce their initial swelling. Four different structures of neat, granular and composite hydrogels including 63 different hydrogel compositions based on 20 kDa poly(ethylene glycol)dimethacrylate showed that the swelling ratio could be tailored without significantly affecting elastic modulus and deformation performance. The results explain the role of the PEGDM precursors on the swelling of the microgels as well as the influence of the microgel and fibre contents on the final properties. Moreover, the precursors of hydrogels with similar mechanical or swelling performance were injectable with a wide range of complex viscosities from 0.1 Pa s to over 1000 Pa s offering new opportunities for applications in confined as well as in unconfined environments.

摘要

开发具有特定应用最佳性能的水凝胶具有挑战性,因为这些性能中的大多数,如韧性、刚度、溶胀性或可变形性,都是相互关联的。一种性能的改善通常是以牺牲另一种性能为代价的。为了解耦这些性能之间的相互依赖性,并扩展水凝胶的材料性能范围,我们提出了一种将复合材料和微凝胶方法相结合的策略。该研究首先关注在最小程度影响其他性能的同时调整水凝胶的溶胀性能。其基本原理是用由相同材料组成的预溶胀微凝胶部分替代一些水凝胶。溶胀率降低了45%。然后用纳米原纤化纤维素纤维增强这些粒状水凝胶,得到混合粒状材料,以提高其韧性并进一步降低其初始溶胀。基于20 kDa聚乙二醇二甲基丙烯酸酯的四种不同结构的纯、粒状和复合水凝胶,包括63种不同的水凝胶组合物,表明溶胀率可以在不显著影响弹性模量和变形性能的情况下进行调整。结果解释了聚乙二醇二甲基丙烯酸酯前体对微凝胶溶胀的作用以及微凝胶和纤维含量对最终性能的影响。此外,具有相似机械性能或溶胀性能的水凝胶前体可注射,其复杂粘度范围从0.1 Pa·s到超过1000 Pa·s,为受限和非受限环境中的应用提供了新机会。

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