纺织学报 ›› 2026, Vol. 47 ›› Issue (07): 120-127.doi: 10.13475/j.fzxb.20260103901

• 纤维材料 • 上一篇    下一篇

非对称结构聚乙烯醇湿驱动纤维的制备及其应用

陈佳慧1,2, 李梦鑫1, 张旋1, 刘龙翔1, 阳惠珍2, 王文1, 于风芹3, 王栋1()   

  1. 1 武汉纺织大学 纺织纤维及制品教育部重点实验室, 湖北 武汉 430200
    2 武汉纺织大学 纺织科学与工程学院, 湖北 武汉 430200
    3 山东安琪尔生活科技有限公司, 山东 泰安 271600
  • 收稿日期:2026-01-19 修回日期:2026-05-12 出版日期:2026-07-15 发布日期:2026-07-29
  • 通讯作者: 王栋(1979—),男,教授,博士。主要研究方向为纤维新材料及其在交叉学科领域的创新。E-mail:wangdon08@126.com
  • 作者简介:陈佳慧(1991—),女,博士。主要研究方向为功能纤维材料。
  • 基金资助:
    山东省科技型中小企业创新能力提升项目(2024TSGC0657);国家自然科学基金项目(52573065);湖北省教育厅科学研究计划项目(B2023058);湖北省自然科学基金项目(2025AFC025)

Construction and application of asymmetric structured polyvinyl alcohol wet-driven fibers

CHEN Jiahui1,2, LI Mengxin1, ZHANG Xuan1, LIU Longxiang1, YANG Huizhen2, WANG Wen1, YU Fengqin3, WANG Dong1()   

  1. 1 Key Laboratory of Textile Fiber and Products, Ministry of Education, Wuhan Textile University, Wuhan, Hubei 430200, China
    2 College of Textile Science and Engineering, Wuhan Textile University, Wuhan, Hubei 430200, China
    3 Shandong Angel Home Textile Co., Ltd., Taian, Shandong 271600, China
  • Received:2026-01-19 Revised:2026-05-12 Published:2026-07-15 Online:2026-07-29

摘要:

为解决纤维基湿驱动材料响应灵敏度与力学性能难以兼得的难题,以聚乙烯醇(PVA)纤维为基础,系统研究了交联剂占比与纤维结构对其力学性能、亲水性及湿刺激响应形变的影响规律,通过设计具有非对称结构的纤维,制备出具有优异结构稳定性、力学性能的湿刺激响应纤维材料。结果表明:交联剂占比与双组分结构对纤维性能具有显著调控作用。随着交联剂添加量增加,单组分纤维因交联密度增大,其拉伸强度得以提升,但亲水性下降,湿刺激响应时间延长。相比之下,非对称结构纤维不仅具有优异的相容性以及力学性能,双组分亲水性差异极大提升了纤维湿刺激响应灵敏度。优选纤维制备的织物展现出优异的湿致形状记忆性能,其长度变化率可达50%,并在多次循环中保持良好可逆性。通过结构与交联度的协同设计,可实现PVA纤维性能的协同优化,为开发高性能智能响应纺织品提供了可行的技术途径。

关键词: 聚乙烯醇, 湿法纺丝, 湿刺激响应, 双组分非对称结构, 形状记忆, 智能纺织品, 湿驱动纤维

Abstract:

Objective Polyvinyl alcohol (PVA) fibers hold great potential for smart textiles by virtue of their excellent biocompatibility, processability, and moisture responsiveness. However, conventional chemical crosslinking for mechanical reinforcement typically compromises hydrophilicity and moisture actuation performance, hindering their use in dynamic wearable systems. Therefore, asymmetric bicomponent PVA fiber was prepared by dual-nozzle wet-spinning, and the mechanical strength and humidity responsiveness of fiber was improved, thereby achieving high-performance moisture actuation smart textiles.

Method PVA spinning solutions were prepared with varying glutaraldehyde (GA) crosslinking ratios(0.1%, 0.125%, 0.15%, 0.2%), single-component PVA fiber and PVA/GA(PG) fibers were fabricated using a conventional wet-spinning setup. Asymmetric two-component PVA/PG (PPG) fibers were fabricated using a dual-nozzle wet-spinning setup. Fiber morphology chemical structure and mechanical properties surface wettability was analyzed by scanning electron microscopy (SEM), Fourier transform infrared spectroscopy (FT-IR), water contact angle measurement, and tensile testing, respectively. Moisture response time was quantified upon water exposure.

Results The results show that the dosage of the crosslinking agent has a significant impact on the microstructure, chemical structure, mechanical properties, hydrophilicity and wet stimulus response performance of PVA fibers. The dosage of the crosslinking agent significantly increases the tensile stress and strain of single-component PVA fibers. As the proportion of the crosslinking agent increases, the hydrophilicity of PVA decreases. The water contact angle of the PVA film is 47.28°, while that of the crosslinked PG film increases to 70.39°. The PVA and PG were utilized to prepare two-component PVA fibers, which not only overcomes the shortcoming of decreased hydrophilicity, but also solve the problem of incompatibility in different phases. The PVA fiber with asymmetric structure was successfully obtained continuous and structurally stable by dual-nozzle wet-spinning. The mechanical properties of the two-component PVA fibers are excellent, which is attributed to a more uniform structure, a more balanced stress distribution, and the synergistic stabilizing effect of the two components. The wet stimulation response performance is jointly regulated by the crosslinking degree and structure of the fibers. For single-component fibers, as the dosage of the crosslinking agent increases, the response time increases from 26 s to 49 s. This is because the densification of the crosslinking network reduces the hydrophilic groups and limits the movement of molecular chains. In contrast, the two-component asymmetric PVA fiber shows better response performance, especially at high crosslinking degrees, such as an average response time of 27 s, which is 44.9% faster than that of the single-component PVA fibers. The improved responsibility attributes to the asymmetric structure of fiber, which can generate internal stress through different swelling behaviors of the components, thereby compensating for the decrease in hydrophilicity caused by high crosslinking degrees. Moreover, the fabric prepared using asymmetric structure fibers exhibits significant and reversible deformation under wet stimulus. When the fabric absorbs 100% of the water, its length change rate reaches 50%, and it remains stable after three cycles. This is attributed to the strong hydrogen bond interaction between the hydroxyl groups in PVA and water molecules, as well as the promoting effect of the asymmetric structure on the differential penetration of water molecules and the movement of molecular chains.

Conclusion This study provides a new viewpoint to the asymmetric moisture-responsive PVA fiber. The results showed that increasing the crosslinking agent content enhances the tensile strength of the single-component fibers, but reduces their hydrophilicity and prolong the moisture response time. The bicomponent asymmetric structure of fiber not only preserves high mechanical strength but also improves structural stability while significantly shortening the moisture response time. Moreover, the resulting fabric exhibits excellent moisture-actuation shape memory with excellent reversibility. Therefore, this work provides both a material platform and a technical basis for developing high-performance smart textiles, particularly for applications in intelligent thermo-moisture-responsive clothing and adaptive protective materials.

Key words: polyvinyl alcohol, wet spinning, wet stimulation response, two-component asymmetric structure, shape memory, smart textiles, moisture-driven fiber

中图分类号: 

  • TS102.5

图1

纤维湿法纺丝示意图"

图2

不同纤维的SEM照片"

图3

不同交联剂添加量纤维的红外光谱图"

图4

不同交联剂添加量、不同组分PVA纤维应力-应变曲线"

图5

不同交联剂添加量薄膜接触角"

图6

不同交联剂添加量纤维湿响应性能"

图7

不同吸湿百分比下织物结构变化"

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