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通过动态二硫键交联策略实现可回收热固性泡沫材料的负泊松比行为

Unlocking Auxetic Behavior in Recyclable Thermosetting Foams Enabled by Dynamic Disulfide Cross-linking Strategy.

作者信息

Guo Zhongkai, Dong Zhaoxing, Gao Junpeng, Zhang Hao, Zhang Baoyan, Li Min-Hui, Hu Jun

机构信息

Beijing Advanced Innovation Centre for Soft Matter Science and Engineering, Beijing University of Chemical Technology, North Third Ring Road 15, Chaoyang District, Beijing, 100029, China.

Department of Resin & Prepreg, AVIC Manufacturing Technology Institute Composite Technology Center, Shijun Road 1, Shunyi District, Beijing, 101300, China.

出版信息

Small. 2024 Dec;20(50):e2406876. doi: 10.1002/smll.202406876. Epub 2024 Sep 23.

DOI:10.1002/smll.202406876
PMID:39308248
Abstract

Auxetic foams with a negative Poisson's ratio (NPR) have attracted considerable attention in material engineering due to their outstanding performance in seismic and energy absorption. Nevertheless, thermoplastic auxetic foams are compromised by weak non-covalent crosslinking that diminishes the mechanical strength and durability of foams. Conversely, thermosetting foams with chemical crosslinking, although mechanically robust, face challenges in elaborating auxetic structure and in achieving recyclability. Herein, an alternative approach is proposed to tackle this dilemma by incorporating dynamic disulfide bonds into the polymer network for preparing a thermosetting polyurethane foam with covalent adaptable network. By leveraging the unidirectional multi-effect compression technique, the topological network reorganization of foam is induced, transforming the initial circular open-cell structure into a re-entrant cell structure. This structural transformation endows the foam with stable NPR capability, achieving a minimum Poisson's ratio value of -0.4 within 30% compressive strain. Benefiting from its reinforced network structure, the foam also demonstrates high compressive strength (6.47 MPa) and tensile strength (1.67 MPa). Furthermore, it is recyclable and can be recompressed into thermosetting films. This work offers a straightforward approach to making auxetic thermosetting foams with good mechanical and recyclable properties, which is interesting for the development of high-performance auxetic materials.

摘要

具有负泊松比(NPR)的拉胀泡沫因其在抗震和能量吸收方面的出色性能而在材料工程领域引起了广泛关注。然而,热塑性拉胀泡沫受到弱非共价交联的影响,这降低了泡沫的机械强度和耐久性。相反,具有化学交联的热固性泡沫虽然机械性能强劲,但在构建拉胀结构和实现可回收性方面面临挑战。在此,提出了一种替代方法来解决这一困境,即将动态二硫键引入聚合物网络中,以制备具有共价自适应网络的热固性聚氨酯泡沫。通过利用单向多效应压缩技术,诱导泡沫的拓扑网络重组,将初始的圆形开孔结构转变为凹穴状孔结构。这种结构转变赋予泡沫稳定的负泊松比能力,在30%的压缩应变范围内实现了最低-0.4的泊松比值。受益于其增强的网络结构,该泡沫还表现出高抗压强度(6.47兆帕)和拉伸强度(1.67兆帕)。此外,它是可回收的,并且可以重新压缩成热固性薄膜。这项工作提供了一种直接的方法来制造具有良好机械性能和可回收性能的拉胀热固性泡沫,这对于高性能拉胀材料的开发具有重要意义。

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