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用于修饰交联聚合物庞大尺寸、形状及机械性能的增长策略。

Growing Strategy for Postmodifying Cross-Linked Polymers' Bulky Size, Shape, and Mechanical Properties.

作者信息

Xiong Xinhong, Wang Sheng, Xue Lulu, Wang Hong, Cui Jiaxi

机构信息

Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China, Huzhou, Zhejiang 313001, China.

Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu, Sichuan 610054, China.

出版信息

ACS Appl Mater Interfaces. 2022 Feb 16;14(6):8473-8481. doi: 10.1021/acsami.1c23954. Epub 2022 Feb 7.

Abstract

Living organisms are open systems that can incorporate externally provided nutrients to vary their appearances and properties, while synthetic materials normally have fixed sizes, shapes, and functions. Herein, we report a strategy for enabling cross-linked polymers to continuously grow with programmable bulky structures and properties. The growing strategy involves repeatable processes including swelling of polymerizable components into the cross-linked polymers, polymerization of the components, and homogenization of the original and newborn polymer networks. Using acrylate-based polymers as an example, we demonstrate that homogenization allows the grown polymer materials to further integrate various polymerizable components to alternate their bulky properties. During the growth, the changes from elastomers to organogels and then to hydrogels with updated covalent-linked functions (, photochromism and thermoresponsiveness) are shown. Since this growing strategy is applicable to different acrylate systems, we envision its great potential in the design of next-generation polymers, smartening systems, and postmodification of cross-linked polymer materials.

摘要

生物体是开放系统,能够吸收外部提供的营养物质以改变其外观和性质,而合成材料通常具有固定的尺寸、形状和功能。在此,我们报告了一种使交联聚合物能够以可编程的庞大结构和性质持续生长的策略。这种生长策略涉及可重复的过程,包括可聚合组分溶胀到交联聚合物中、组分的聚合以及原始和新生聚合物网络的均质化。以丙烯酸酯基聚合物为例,我们证明均质化使生长的聚合物材料能够进一步整合各种可聚合组分以改变其庞大性质。在生长过程中,展示了从弹性体到有机凝胶,再到具有更新的共价连接功能(如光致变色和热响应性)的水凝胶的转变。由于这种生长策略适用于不同的丙烯酸酯体系,我们设想其在下一代聚合物设计、智能系统以及交联聚合物材料的后修饰方面具有巨大潜力。

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