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双功能酚引发的可打印坚韧水凝胶的序列聚合策略。

Bifunctional Phenol-Enabled Sequential Polymerization Strategy for Printable Tough Hydrogels.

机构信息

Key Laboratory of Synthetic and Natural Functional Molecule Chemistry of the Ministry of Education, College of Chemistry and Materials Science, Northwest University, Xi'an, 710069, China.

National Engineering Research Center for Biomaterials, Sichuan University, Chengdu, 610064, China.

出版信息

Macromol Rapid Commun. 2022 Nov;43(21):e2200419. doi: 10.1002/marc.202200419. Epub 2022 Jul 7.

Abstract

Hydrogels are promising material candidates in engineering soft robotics, mechanical sensors, biomimetic regenerative medicine, etc. However, developing multinetwork hydrogels with high mechanical properties and excellent printability are still challenging. Here, a bifunctional phenol-enabled sequential polymerization (BPSP) strategy is reported to fabricate high-performance multinetwork hydrogels under the orthogonal catalysis of efficient ruthenium photochemistry. Benefiting from this bifunctional design, phenols can sequentially polymerize with typical monomers and themselves to fabricate various phenol-containing polymers (Ph-Ps) and Ph-Ps-based multinetwork tough hydrogels, respectively. The as-prepared hydrogels have maximum stress of 0.75 MPa and toughness of 2.2 MJ m under the critical strain of 800%. These property parameters are a maximum of 16 times higher than those of the phenol-postmodified and phenol-free hydrogels. Moreover, the rapid coupling polymerization of phenols can shorten the gelation times of hydrogels to as low as ≈4 s, which enables its printable property for customizable applications. As a proof of concept, a 3D scaffold-like structure is optimized as highly sensitive mechanical sensors for detecting various human motions.

摘要

水凝胶是工程软机器人、机械传感器、仿生再生医学等领域有前途的材料候选物。然而,开发具有高机械性能和出色可打印性的多网络水凝胶仍然具有挑战性。在这里,报道了一种双功能酚基引发的顺序聚合(BPSP)策略,该策略在高效钌光化学的正交催化下,可制备高性能多网络水凝胶。得益于这种双功能设计,酚类可以与典型单体及其自身顺序聚合,分别制备各种含酚聚合物(Ph-Ps)和 Ph-Ps 基多网络坚韧水凝胶。所制备的水凝胶在 800%临界应变下的最大应力为 0.75 MPa,韧性为 2.2 MJ m -3 。这些性能参数比酚后修饰和无酚水凝胶的最高值高 16 倍。此外,酚类的快速偶联聚合可以将水凝胶的凝胶时间缩短至低至 ≈4 s,从而实现了其可打印的特性,可用于定制应用。作为概念验证,优化了 3D 支架状结构作为高度灵敏的机械传感器,用于检测各种人体运动。

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