纺织学报 ›› 2026, Vol. 47 ›› Issue (03): 201-207.doi: 10.13475/j.fzxb.20251102102

• 功能性纺织品 • 上一篇    下一篇

纺织品抗菌新技术研究进展

施楣梧()   

  1. 中国纺织工程学会毛纺织专业委员会, 北京 100025
  • 收稿日期:2025-11-10 修回日期:2026-01-06 出版日期:2026-03-15 发布日期:2026-03-15
  • 作者简介:施楣梧(1957—),男,教授级高工。主要研究方向为电磁纺织品、阻燃材料及其它功能性纤维材料的开发。E-mail:shimeiwu@263.net.cn

Review of new antimicrobial technologies for textiles

SHI Meiwu()   

  1. Wool Textile Committee of China Textile Engineering Society, Beijing 100025, China
  • Received:2025-11-10 Revised:2026-01-06 Published:2026-03-15 Online:2026-03-15

摘要:

为满足当前纺织品抗菌的靶向化与适度化需求,通过梳理抗菌防臭纺织品新技术进展,概述了抗菌纺织品“血脉与菌脉”协同的健康逻辑,讨论了共混纺丝、织物后整理等传统抗菌技术的局限性;重点分析了超临界抗菌剂固着技术的精准性与应用瓶颈,以及电子束辐照接枝技术的长效性与剂量调控要点;总结了当前纤维表面纳米结构仿生抗菌的靶向优势与研发难点。进一步明确了超临界、电子束辐照技术的推广价值,指出在纤维材料表面设计具有柱状、锥状、片状的特殊纳米纤维结构是抗菌的未来方向,为抗菌纺织品从无差别杀菌向精准抑菌转型提供技术思路。

关键词: 功能纺织品, 超临界CO2技术, 电子束辐照接枝, 靶向抗菌, 抗菌剂, 抗菌防臭纺织品

Abstract:

Significance Apparel textiles act as a vital interface between the human body and the surrounding environment, not only regulating the exchange of energy (e.g., heat and light) and substances (e.g., water vapor and dust) but also functioning as a barrier against pathogenic microorganisms. Critically, this antimicrobial function must be moderate in inhibiting growth of harmful microorganisms while preserving the symbiotic flora on human skin, which is essential for maintaining a healthy micro-ecological balance. From the perspective of microbiomics, the human body is a ″superorganism″ co-constructed by the human genome and symbiotic microbial genes. With the continuous improvement of people's living standards and health awareness, the demand for high-performance antibacterial and deodorant textiles is growing rapidly, making it urgent to systematically understand the emerging technologies and clarify development directions, which is the core significance of this study.

Progress This study systematically reviews the latest progress in antimicrobial and deodorant textile technologies. It first points out the limitations of traditional technologies. Blend spinning leads to the waste of antimicrobial agents (only surface agents are effective) and reduces fiber spinnability, while fabric finishing often requires cross-linking agents, resulting in hard hand feel and environmental pollution. Two advanced technologies with great promotion potential are then analyzed in detail. Supercritical fluid technology (using CO2 under critical conditions of 31.1 ℃ and 7.38 MPa) enables the precise fixation of antimicrobial agents on the shallow surface of fibers, with a dosage of only a few thousandths of the fiber mass. A case study by Nanjing Hesu Group shows that cotton treated with this technology retains excellent antibacterial effects even after mercerization, and the treated cashmere maintains a soft hand feel. Electron beam irradiation grafting technology achieves stable covalent bonding between antibacterial agents and fibers, with some products maintaining over 70% antimicrobial rate after 150 wash cycles. The key is to balance the irradiation dose, and it is evidenced that cotton loses 29.8% strength at 33 kGy under pre-irradiation, while polyester only loses 3.8% strength at 50 kGy. Additionally, the bionic antimicrobial idea of constructing nano-structures (e.g., 80 nm-diameter silicon pillars) on fiber surfaces is discussed, which achieves targeted microbial resistance by mechanically damaging cell membranes, though it is still in the exploratory stage.

Conclusion and Prospect Supercritical CO2 technology has been verified by the market and is a mature and promotable technology, effectively solving the problems of conventional processes. In terms of electron beam irradiation technology, with its outstanding long-term antibacterial performance, dose parameters need to be further optimized in order to be applied to different fiber types. For electromagnetic radiation technologies such as microwave and ultraviolet equipment improvement is necessary to overcome the limitation of insufficient penetration depth. The nano-structure antimicrobial technology, as an effective way to achieve targeted and moderate antibacterial effects, is of great scientific significance but faces challenges in preparation processes and mechanism research. Future research success relies on the strengthening of interdisciplinary cooperation among textile science, microbiology, and nanotechnology, focusing on solving the key issues of fiber surface nano-structure preparation and the matching mechanism between structures and different microorganisms, thereby breaking the dilemma of ″indiscriminate sterilization″ and promoting the high-quality development of the antibacterial textile industry.

Key words: functional textiles, supercritical CO2 technology, electron beam irradiation grafting, targeted antimicrobial, antimicrobial agent, antimicrobial and deodorant fabric

中图分类号: 

  • TS 101
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