Reversibly growing crosslinked polymers with programmable sizes and properties

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作者
Xiaozhuang Zhou
Yijun Zheng
Haohui Zhang
Li Yang
Yubo Cui
Baiju P. Krishnan
Shihua Dong
Michael Aizenberg
Xinhong Xiong
Yuhang Hu
Joanna Aizenberg
Jiaxi Cui
机构
[1] University of Electronic Science and Technology of China,Institute of Fundamental and Frontier Sciences
[2] INM - Leibniz Institute for New Materials,School of Physical Science and Technology
[3] ShanghaiTech University,The George W. Woodruff School of Mechanical Engineering
[4] Georgia Institute of Technology,John A. Paulson School of Engineering and Applied Sciences
[5] Harvard University,The School of Chemical and Biomolecular Engineering
[6] Georgia Institute of Technology,Department of Chemistry and Chemical Biology
[7] Harvard University,undefined
来源
Nature Communications | / 14卷
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摘要
Growth constitutes a powerful method to post-modulate materials’ structures and functions without compromising their mechanical performance for sustainable use, but the process is irreversible. To address this issue, we here report a growing-degrowing strategy that enables thermosetting materials to either absorb or release components for continuously changing their sizes, shapes, compositions, and a set of properties simultaneously. The strategy is based on the monomer-polymer equilibrium of networks in which supplying or removing small polymerizable components would drive the networks toward expansion or contraction. Using acid-catalyzed equilibration of siloxane as an example, we demonstrate that the size and mechanical properties of the resulting silicone materials can be significantly or finely tuned in both directions of growth and decomposition. The equilibration can be turned off to yield stable products or reactivated again. During the degrowing-growing circle, material structures are selectively varied either uniformly or heterogeneously, by the availability of fillers. Our strategy endows the materials with many appealing capabilities including environment adaptivity, self-healing, and switchability of surface morphologies, shapes, and optical properties. Since monomer-polymer equilibration exists in many polymers, we envision the expansion of the presented strategy to various systems for many applications.
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