具有不同结构的杜仲胶基弹性纤维的机械和形状记忆特性

IF 4.5 3区 工程技术 Q1 CHEMISTRY, APPLIED Reactive & Functional Polymers Pub Date : 2024-05-11 DOI:10.1016/j.reactfunctpolym.2024.105937
Zhiying Han, Hao Wang, Qiubo Wang, Xiaojuan Liao, Ruyi Sun, Meiran Xie
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引用次数: 0

摘要

杜仲胶(EUG)由反式-1,4-聚异戊二烯组成,具有高柔韧性和结晶性,可用作弹性和热塑性材料。利用其独特的结晶特性,采用不同类型的针头,通过湿法纺丝制备了一系列基于 EUG 的复合弹性纤维。研究发现,EUG 纤维具有优异的机械性能,包括较高的拉伸强度(42.8 兆帕)、断裂伸长率(572%)和韧性(136.8 兆焦耳/立方米)。与 EUG 弹性体相比,不同成分和不同结构的复合弹性纤维具有更高的温度敏感性和优异的形状记忆恢复能力。同时,含有 EUG 和丁基橡胶(IIR)的弹性纤维比原始 EUG 具有更好的阻尼性能。因此,这项工作为增强生物基 EUG 材料的功能和扩大其应用范围提供了一种途径。
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Mechanical and shape memory properties of Eucommia ulmoides gum-based elastic fibers with various architectures

Eucommia ulmoides gum (EUG) is composed of trans-1,4-polyisoprene with high flexibility and crystallinity, and could be utilized as elastic and thermoplastic materials. Taking advantage of the unique crystallization characteristics, a series of EUG-based complex elastic fibers were prepared by wet-spinning method using different types of needles. It was found that the EUG fiber displayed excellent mechanical properties including high tensile strength (42.8 MPa), elongation at break (572%), and toughness (136.8 MJ m−3). The complex elastic fibers combining different compositions and various architectures have higher temperature sensitivity and excellent shape memory recovery ability compared to EUG elastomer. Meanwhile, the elastic fibers containing EUG and butyl rubber (IIR) exhibited better damping properties than pristine EUG. Therefore, this work provided a way to enhance the functionality and expand the application of bio-based EUG materials.

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来源期刊
Reactive & Functional Polymers
Reactive & Functional Polymers 工程技术-高分子科学
CiteScore
8.90
自引率
5.90%
发文量
259
审稿时长
27 days
期刊介绍: Reactive & Functional Polymers provides a forum to disseminate original ideas, concepts and developments in the science and technology of polymers with functional groups, which impart specific chemical reactivity or physical, chemical, structural, biological, and pharmacological functionality. The scope covers organic polymers, acting for instance as reagents, catalysts, templates, ion-exchangers, selective sorbents, chelating or antimicrobial agents, drug carriers, sensors, membranes, and hydrogels. This also includes reactive cross-linkable prepolymers and high-performance thermosetting polymers, natural or degradable polymers, conducting polymers, and porous polymers. Original research articles must contain thorough molecular and material characterization data on synthesis of the above polymers in combination with their applications. Applications include but are not limited to catalysis, water or effluent treatment, separations and recovery, electronics and information storage, energy conversion, encapsulation, or adhesion.
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