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通过湿法纺丝制备含碳纳米材料的聚丙烯腈基导电纱线的工艺优化

Process Optimization for Manufacturing PAN-Based Conductive Yarn with Carbon Nanomaterials through Wet Spinning.

作者信息

Kim Hyelim, Moon Hyeongmin, Lim Daeyoung, Jeong Wonyoung

机构信息

Material and Component Convergence R&D Department, Korea Institute of Industrial Technology (KITECH), Ansan 15588, Gyeonggi-do, Korea.

出版信息

Polymers (Basel). 2021 Oct 14;13(20):3544. doi: 10.3390/polym13203544.

Abstract

This study aimed to manufacture PAN-based conductive yarn using a wet-spinning process. Two types of carbon nanomaterials, multiwall carbon nanotubes (MWCNT) and carbon nanofiber (CNF), were used alone or in a mixture. First, to derive the optimal composite solution condition for the wet spinning process, a composite solution was prepared with carbon nanomaterials of the same total mass weight (%) and three types of mechanical stirring were performed: mechanical stirring, ultra-sonication, and ball milling. A ball milling process was finally selected by analyzing the viscosity. Based on the above results, 8, 16, 24, and 32 wt% carbon nanomaterial/PAN composite solutions were prepared to produce wet spinning-based composite films before preparing a conductive yarn, and their physical and electrical properties were examined. By measuring the viscosity of the composite solution and the surface resistance of the composite film according to the type and content of carbon nanomaterials, a suitable range of viscosity was found from 10 cP to 10 cP, and the electrical percolation threshold was from 16 wt% carbon nanomaterial/PAN, which showed a surface resistance of 10 Ω/sq or less. Wet spinning was possible with a PAN-based composite solution with a high content of carbon nanomaterials. The crystallinity, crystal orientation, tenacity, and thermal properties were improved when CNF was added up to 24 wt%. On the other hand, the properties deteriorated when CNTs were added alone due to aggregation. Mixing CNT and CNF resulted in poorer properties than with CNF alone, but superior properties to CNT alone. In particular, the electrical properties after incorporating 8 wt% CNT/16 wt% CNF into the PAN, 10 Ω/cm was similar to the PAN-based conductive yarn containing 32 wt% CNF. Therefore, this yarn is expected to be applicable to various smart textiles and wearable devices because of its improved physical properties such as strength and conductivity.

摘要

本研究旨在通过湿法纺丝工艺制备聚丙烯腈(PAN)基导电纱线。使用了两种类型的碳纳米材料,即多壁碳纳米管(MWCNT)和碳纳米纤维(CNF),它们单独使用或混合使用。首先,为了得出湿法纺丝工艺的最佳复合溶液条件,制备了具有相同总质量百分比(%)的碳纳米材料的复合溶液,并进行了三种类型的机械搅拌:机械搅拌、超声处理和球磨。通过分析粘度最终选择了球磨工艺。基于上述结果,在制备导电纱线之前,制备了8 wt%、16 wt%、24 wt%和32 wt%的碳纳米材料/PAN复合溶液以生产基于湿法纺丝的复合薄膜,并对其物理和电学性能进行了检测。通过根据碳纳米材料的类型和含量测量复合溶液的粘度和复合薄膜的表面电阻,发现合适的粘度范围为10厘泊至10厘泊,电学渗流阈值为16 wt%的碳纳米材料/PAN,其表面电阻为10Ω/平方或更低。对于高含量碳纳米材料的PAN基复合溶液可以进行湿法纺丝。当添加高达24 wt%的CNF时,结晶度、晶体取向、强度和热性能得到改善。另一方面,单独添加CNT时由于团聚导致性能恶化。将CNT和CNF混合导致的性能比单独使用CNF时更差,但优于单独使用CNT时的性能。特别是,将8 wt%的CNT/16 wt%的CNF加入到PAN中后的电学性能,10Ω/厘米类似于含有32 wt% CNF的PAN基导电纱线。因此,由于其诸如强度和导电性等物理性能的改善,这种纱线有望应用于各种智能纺织品和可穿戴设备。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b397/8537922/637cad1d1da0/polymers-13-03544-g001.jpg

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