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热拉伸工艺对载活性炭多孔聚间苯二甲酰间苯二胺复合纤维孔隙参数、气体吸附及力学性能的影响

Effects of the Hot-Drawing Process on the Pore Parameters, Gas Absorption and Mechanical Performances of Activated Carbon-Loaded Porous Poly(m-Phenylene Isophthalamide) Composite Fibres.

作者信息

Li Xiaosong, Li Bo, Xu Qibin, Meng Lingcheng, Wu Deyang, Liu Pengqing, Salaün Fabien, Zhang Shengchang

机构信息

College of Polymer Science & Engineering, Sichuan University, Chengdu 610065, China.

Sichuan Develop China Tech New Materials Co., Ltd., Meishan 620000, China.

出版信息

Polymers (Basel). 2024 Dec 10;16(24):3452. doi: 10.3390/polym16243452.

Abstract

Poor breathability, inadequate flexibility, bulky wearability, and insufficient gas-adsorption capacity always limit the developments and applications of conventional chemical protective clothing (CPC). To create a lightweight, breathable, and flexible fabric with a high gas-absorption capacity, activated carbon (AC)-loaded poly(m-phenylene isophthalamide) (PMIA) porous composite fibres were fabricated from a mixed wet-spinning process integrated with a solvent-free phase separation process. By manipulating the pore parameters of as-spun composite fibres, the exposure-immobilization of AC particles on the fibre surface can offer a higher gas-absorption capacity and better AC-loading stability. To improve the mechanical properties of AC-loaded porous as-spun fibres and further optimize the pore-locking structures, the impact of the hot-drawing process on the evolution of pore parameters and the corresponding properties (including the gas absorption capacity, the mechanical performance, and the stability of AC particles during loading) was clarified. After the hot-drawing process, the inhomogeneous pore morphologies composed of mesopores/micropores from as-spun fibres changed into homogeneous and decreased mesopores. With the decrease in structural defects in homogeneous morphologies, the tensile strength of AC-loaded PMIA porous-drawn fibres increased to 1.5 cN/dtex. Meanwhile, the greater total pore volume and specific surface area after hot drawing also maintained the gas-absorption capacity of drawn composite fibres at 98.53 mg/g. Furthermore, the AC-loaded PMIA porous composite fibres also showed comparable performance to the commercial FFF02 absorption layer in terms of static absorption behaviour for different gas molecules and absorption-desorption multi-cycling evaluations. In addition, due to the size reduction in mesopores after the hot-drawing process, the loading stability of AC particles in the stretched composite fibres was more substantial.

摘要

透气性差、柔韧性不足、穿着笨重以及气体吸附能力不够等问题一直限制着传统化学防护服(CPC)的发展与应用。为了制备一种具有高气体吸收能力的轻质、透气且柔韧的织物,通过将混合湿法纺丝工艺与无溶剂相分离工艺相结合,制备了负载活性炭(AC)的聚间苯二甲酰间苯二胺(PMIA)多孔复合纤维。通过控制初生复合纤维的孔隙参数,AC颗粒在纤维表面的暴露固定可提供更高的气体吸收能力和更好的AC负载稳定性。为了改善负载AC的多孔初生纤维的力学性能并进一步优化孔隙锁定结构,阐明了热拉伸工艺对孔隙参数演变以及相应性能(包括气体吸收能力、力学性能和AC颗粒负载过程中的稳定性)的影响。热拉伸工艺后,初生纤维中由中孔/微孔组成的不均匀孔隙形态转变为均匀且中孔数量减少的形态。随着均匀形态中结构缺陷的减少,负载AC的PMIA多孔拉伸纤维的拉伸强度提高到1.5 cN/dtex。同时,热拉伸后更大的总孔体积和比表面积也使拉伸复合纤维的气体吸收能力保持在98.5 mg/g。此外,在不同气体分子的静态吸收行为和吸收-解吸多循环评估方面,负载AC的PMIA多孔复合纤维也表现出与商用FFF02吸收层相当的性能。此外,由于热拉伸工艺后中孔尺寸减小,拉伸复合纤维中AC颗粒的负载稳定性更强。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c3e/11678970/b240022667e9/polymers-16-03452-g001.jpg

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