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由 CO 衍生的六元环状碳酸酯制备的机械稳定和可化学回收的聚恶唑烷酮。

Mechanically Robust and Chemically Recyclable Polyhydroxyurethanes from CO-Derived Six-Membered Cyclic Carbonates.

机构信息

State Key Laboratory of Fine Chemicals, Department of Polymer Science and Engineering, Liaoning Key Laboratory of Polymer Science and Engineering, School of Chemical Engineering, Dalian University of Technology, Dalian116024, China.

出版信息

ACS Appl Mater Interfaces. 2023 Jan 11;15(1):2246-2255. doi: 10.1021/acsami.2c19251. Epub 2022 Dec 23.

Abstract

In the current context of sustainable chemistry development and new regulations, aminolysis of cyclic carbonate is one of the most promising routes to nonisocyanate polyurethanes, also called polyhydroxyurethanes (PHU). In this study, a new kind of shape memory PHU vitrimers with outstanding mechanical properties and chemical recyclability is prepared. The monomer employed for aminolysis to form the PHUs is bis(six-membered cyclic carbonate) of 4,4'-biphenol (BCC-BP), which is synthesized by bi(1,3-diol) precursors and CO. The synthetic strategy, isocyanate-free and employing CO as a building block, is environmentally friendly and suits the concept of carbon neutrality. The thermal properties, mechanical properties, and dynamic behaviors of the PHUs are explored. The maximum breaking strength and elongation at break of the resultant PHUs reach 65 MPa and 452%, respectively, exceeding other reported PHU-based materials in combined performance. Such a PHU material can also lift up a load 4700 times heavier than its own weight by a shape recovery process. Finally, the bi(1,3-diol) can be regenerated through the alcoholysis of PHUs to realize chemical recycling. This work provides a feasibility study for a green synthetic approach and for designing a novel PHU material with outstanding properties.

摘要

在可持续化学发展和新法规的当前背景下,环状碳酸酯的氨解是制备非异氰酸酯型聚氨酯(也称为聚羟基脲,PHU)的最有前途的途径之一。本研究制备了一种具有优异力学性能和可化学回收性的新型形状记忆 PHU 热固性树脂。用于形成 PHU 的氨解单体是 4,4'-联苯二酚的双(六元环状碳酸酯)(BCC-BP),它由双(1,3-二醇)前体和 CO 合成。这种无异氰酸酯且以 CO 为构建块的合成策略具有环境友好性,符合碳中和概念。研究了 PHU 的热性能、力学性能和动态行为。所得 PHU 的最大断裂强度和断裂伸长率分别达到 65 MPa 和 452%,在综合性能方面超过了其他报道的基于 PHU 的材料。这种 PHU 材料还可以通过形状恢复过程举起比自身重量重 4700 倍的负载。最后,通过 PHU 的醇解可以再生双(1,3-二醇),实现化学回收。这项工作为绿色合成方法和设计具有优异性能的新型 PHU 材料提供了可行性研究。

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