Shear-enhanced liquid-crystal spinning of conjugated polymer fibers.

IF 17.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
National Science Review Pub Date : 2025-08-13 eCollection Date: 2025-10-01 DOI:10.1093/nsr/nwaf331
Hao Jiang, Chi-Yuan Yang, Deyu Tu, Yueheng Zhong, Zhu Chen, Wei Huang, Liang-Wen Feng, Hengda Sun, Christian Müller, Antonio Facchetti, Hongzhi Wang, Simone Fabiano, Gang Wang
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引用次数: 0

Abstract

Conjugated polymer fibers hold great promise for manufacturing unconventional electronic devices, particularly for advancing the applicability of wearable technology and smart textiles. For instance, these fibers have recently been used for energy conversion, electrochemical sensing and platforms for human-machine interactions. However, the limited methods available for spinning fibers from conjugated polymers with rigid backbones have impeded progress in wearable applications. Here, we report the continuous production of anisotropic semiconductor fibers by modulating π-π stacking interactions of liquid-crystalline conjugated polymers under shear stress. This method allows rigid conjugated polymers to be processed, synergistically enhancing both the mechanical and semiconductor properties of fibers through liquid-crystal spinning. As a result, these fibers exhibit excellent electrochemical performance, high mechanical strength (∼600 MPa) and outstanding scalability, as well as stability under extreme temperatures, UV radiation and chemical reagent exposure. Moreover, a fully textile-based visual logic sensing system was developed using semiconductor-fiber organic electrochemical transistors, offering a novel technological approach for integrating smart textiles into precision medicine and health monitoring. These findings underscore the importance of the liquid crystalline state and solution control in optimizing the performance of conjugated polymer fibers, paving the way for developing a new generation of fiber semiconductor devices.

剪切增强液晶纺丝共轭聚合物纤维。
共轭聚合物纤维在制造非常规电子设备方面具有很大的前景,特别是在推进可穿戴技术和智能纺织品的适用性方面。例如,这些纤维最近被用于能量转换、电化学传感和人机交互平台。然而,从具有刚性骨架的共轭聚合物中纺丝纤维的有限方法阻碍了可穿戴应用的进展。在这里,我们报道了通过在剪切应力下调制液晶共轭聚合物的π-π堆叠相互作用来连续生产各向异性半导体纤维。这种方法允许加工刚性共轭聚合物,通过液晶纺丝协同提高纤维的机械和半导体性能。因此,这些纤维表现出优异的电化学性能、高机械强度(~ 600 MPa)和出色的可扩展性,以及在极端温度、紫外线辐射和化学试剂暴露下的稳定性。此外,利用半导体纤维有机电化学晶体管开发了一种完全基于纺织品的视觉逻辑传感系统,为智能纺织品集成到精准医疗和健康监测中提供了一种新的技术途径。这些发现强调了液晶状态和溶液控制在优化共轭聚合物纤维性能中的重要性,为开发新一代光纤半导体器件铺平了道路。
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来源期刊
National Science Review
National Science Review MULTIDISCIPLINARY SCIENCES-
CiteScore
24.10
自引率
1.90%
发文量
249
审稿时长
13 weeks
期刊介绍: National Science Review (NSR; ISSN abbreviation: Natl. Sci. Rev.) is an English-language peer-reviewed multidisciplinary open-access scientific journal published by Oxford University Press under the auspices of the Chinese Academy of Sciences.According to Journal Citation Reports, its 2021 impact factor was 23.178. National Science Review publishes both review articles and perspectives as well as original research in the form of brief communications and research articles.
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