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弹性体:在聚合物网络中使用动态键控制粘弹性、组装和功能。

Vitrimers: Using Dynamic Associative Bonds to Control Viscoelasticity, Assembly, and Functionality in Polymer Networks.

机构信息

Department of Materials Science and Engineering, University of Illinois Urbana-Champaign, Urbana, Illinois, 61801, United States.

Frederick Seitz Materials Research Laboratory, University of Illinois Urbana-Champaign, Urbana, Illinois, 61801, United States.

出版信息

ACS Macro Lett. 2022 Apr 19;11(4):475-483. doi: 10.1021/acsmacrolett.2c00038. Epub 2022 Mar 21.

Abstract

Vitrimers have been investigated in the past decade for their promise as recyclable, reprocessable, and self-healing materials. In this Viewpoint, we focus on some of the key open questions that remain regarding how the molecular-scale chemistry impacts macroscopic physical chemistry. The ability to design temperature-dependent complex viscoelastic spectra with independent control of viscosity and modulus based on knowledge of the dynamic bond and polymer chemistry is first discussed. Next, the role of dynamic covalent chemistry on self-assembly is highlighted in the context of crystallization and nanophase separation. Finally, the ability of dynamic bond exchange to manipulate molecular transport and viscoelasticity is discussed in the context of various applications. Future directions leveraging dynamic covalent chemistry to provide insights regarding fundamental polymer physics as well as imparting functionality into polymers are discussed in all three of these highlighted areas.

摘要

在过去的十年中, vitrimers 因其作为可回收、可再加工和自修复材料的潜力而受到研究关注。在这篇观点文章中,我们关注了一些关于分子尺度化学如何影响宏观物理化学的关键未解决问题。首先讨论了基于动态键和聚合物化学知识,设计具有独立粘度和模量控制的温度依赖性复杂粘弹性谱的能力。接下来,在结晶和纳米相分离的背景下,突出了动态共价化学对自组装的作用。最后,讨论了动态键交换在各种应用中对分子传输和粘弹性的控制能力。在这三个突出领域中,都讨论了利用动态共价化学提供有关基本聚合物物理的见解以及赋予聚合物功能的未来方向。

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