Journal of Textile Research ›› 2026, Vol. 47 ›› Issue (03): 233-239.doi: 10.13475/j.fzxb.20250803701

• Functional Textiles • Previous Articles     Next Articles

Preparation and properties of novel antimicrobial fibers

LI Ruirui1, WEN Peng1, ZHANG Yong1, CHEN Xuejun2()   

  1. 1 Nanjing Bioserica Era Antimicrobial Materials Technology Group Co., Ltd., Nanjing, Jiangsu 210000, China
    2 Nanjing Yuanjian Biotechnology Co., Ltd., Nanjing, Jiangsu 210000, China
  • Received:2025-08-18 Revised:2026-01-12 Online:2026-03-15 Published:2026-03-15
  • Contact: CHEN Xuejun E-mail:528926442@qq.com

Abstract:

Objective This study presents an novel technological approach for preparing antimicrobial fibers by integrating oligomers poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) with a supercritical fluid. The objective is to develop antimicrobial fibers that exhibit both high antimicrobial rate and wash resistance. Through this integration, the fibers maintain their functional properties even after repeated washing, thereby enhancing their durability and practical applicability.

Method The molecular structures and functional groups of both PHBV and its derived oligomers (OPHB) were characterized using nuclear magnetic resonance (NMR) spectroscopy and Fourier-transform infrared (FT-IR) spectroscopy. In accordance with the Disinfection Technical Specification (2002 edition), the minimum inhibitory concentration and safety profile of OPHB were systematically evaluated. Antimicrobial fiber was processed by supercritical fluid technology, and its antimicrobial function comes from OPHB. The physical properties of the fibers were assessed both before and after the processing. Subsequently, the processed fibers were subjected to 50 washing cycles in compliance with the Chinese textile standard FZ/T 73023—2006. The antimicrobial rate of the processed fibers was quantitatively determined before and after washing, in accordance with the testing protocol specified in GB/T 20944.3—2008.

Results The structural characteristics of OPHB were investigated using FT-IR spectroscopy and NMR spectroscopy. The analytical results confirmed that OPHB is an oligomeric derivative of PHBV. OPHB demonstrated minimum inhibitory concentration of 5 000 mg/L against both E. coli (a gram-negative bacterium) and S. aureus (a gram-positive bacterium) through antimicrobial susceptibility testing. This comparable efficacy across bacterial classes underscores its broad-spectrum antimicrobial activity. Comprehensive safety evaluations further demonstrated that OPHB is non-toxic, non-irritating to skin, and non-mutagenic. Antimicrobial fibers were fabricated by applying the supercritical fluid technology and OPHB to a range of common textile substrates, including cotton, viscose, Modal, and polyester. At an OPHB content of 0.5%, all treated fibers achieved antimicrobial rates exceeding 90%. Increasing the OPHB concentration to 1% further enhanced performance, yielding near-complete inhibition rate (approaching 100%). Notably, after undergoing 50 standardized washing cycles in accordance with FZ/T 73023—2006, the antimicrobial rate of the treated fibers remained above 90%, thereby demonstrating exceptional wash durability and long-term functional stability. Mechanical integrity assessments confirmed that the processing technology did not adversely affect physical and mechanical properties of the fiber. Specifically, no statistically significant changes were observed in linear density, tensile strength, or elongation at break, indicating that the structural integrity of the fibers was fully preserved during processing. Furthermore, leaching of antimicrobial components was evaluated by the inhibition zone test. All treated fibers exhibited negligible inhibition zones (D<1), confirming a non-leaching mechanism of action. Finally, textile fabrics produced through standard industrial processes, including spinning, weaving, and dyeing of fibers, maintained high antimicrobial performance. These fabrics exhibited antimicrobial rates of approximately 90% against three distinct bacterial strains, both before and after repeated washing, highlighting the robustness and practical applicability of the developed technology.

Conclusion As an oligomer derived from PHBV, OPHB combines safety with high antimicrobial rate, demonstrating excellent antimicrobial activity even at low concentrations. The supercritical fluid technology for OPHB loading is applicable to diverse fiber substrates, yielding antimicrobial fibers with outstanding long-lasting washing resistance while maintaining mechanical properties nearly identical to untreated fibers. OPHB-based antimicrobial fibers function via a non-leaching mechanism, minimizing potential risks to human skin and making them suitable for intimate apparel and similar textiles. Fabrics produced from OPHB antimicrobial fibers through full-process operations, including spinning, weaving, and dyeing, retain superior antimicrobial performance and washing resistance.

Key words: antimicrobial fiber, poly(3-hydroxybutyrate-co-3-hydroxyvalerate), supercritical fluid technology, washing resistance, non-leaching antimicrobial, functional fiber

CLC Number: 

  • TS 101.3

Fig.1

Preparation process flow of OPHB antimicrobial fibers"

Fig.2

Chemical composition analysis of PHBV and OPHB. (a) Fourier transform infrared spectra; (b) Nuclear magnetic resonance hydrogen spectra"

Fig.3

Antimicrobial rates of four types of fibers with different contents of OPHB against E. coli"

Tab.1

Antimicrobial property and antimicrobial washing resistance of OPHB antimicrobial fiber"

样品
编号
对大肠埃希菌
抑菌率/%
对金黄色葡萄球菌
抑菌率/%
对白念珠菌
抑菌率/%
水洗前 水洗后 水洗前 水洗后 水洗前 水洗后
AJC 99 91 98 95 95 89
99 93 97 96 93 88
99 92 99 94 94 90
AR 95 90 94 92 99 92
93 93 96 92 93 93
97 92 97 93 94 90
AMD 96 93 96 95 97 92
94 90 98 93 92 92
97 92 94 92 91 89
AT 98 94 98 93 93 88
96 94 96 92 91 89
97 95 98 95 93 92

Tab.2

Comparison of properties of OPHB antimicrobial fiber before and after processing"

样品
编号
线密度/dtex 断裂强度/(cN·dtex-1) 断裂伸长率/%
加工前 加工后 加工前 加工后 加工前 加工后
AJC 1.64±0.02 1.63±0.01 3.24±0.05 3.28±0.03 5.77±0.25 5.83±0.12
AR 1.34±0.02 1.32±0.01 2.86±0.02 2.86±0.02 18.47±0.15 18.63±0.23
AMD 1.15±0.01 1.12±0.01 4.04±0.09 4.10±0.02 13.57±0.04 13.43±0.21
AT 1.94±0.02 1.94±0.01 4.87±0.01 4.92±0.03 33.20±0.36 33.57±0.15

Tab.3

Leachability test results of OPHB antimicrobial fiber"

样品
编号
抑菌圈直径D/mm
对大肠埃希菌 对金黄色葡萄球菌 对白念珠菌
AJC 0 1 0
AR 0 0 0
AMD 0 0 0
AT 0 0 0

Tab.4

Antimicrobial property and antimicrobial washing resistance of OPHB antimicrobial fabrics"

样品
编号
对大肠埃希菌
抑菌率/%
对金黄色葡萄
球菌抑菌率/%
对白念珠菌
抑菌率/%
水洗前 水洗后 水洗前 水洗后 水洗前 水洗后
AJCT 95 91 95 94 94 90
94 92 96 94 94 91
94 92 98 95 95 88
ART 94 92 96 93 98 90
94 91 96 91 97 93
93 90 97 93 96 90
AMDT 93 93 94 94 98 88
92 90 97 92 97 88
94 93 98 95 92 89
ATT 95 94 97 93 94 86
96 96 97 91 91 89
96 91 98 90 91 88
[1] 龙思宇, 曾舒, 钟安澜, 等. 抗菌聚丙烯的制备及应用研究进展[J]. 工程塑料应用, 2023, 51(10): 186-191.
LONG Siyu, ZENG Shu, ZHONG Anlan, et al. Research progress in preparation and application of antimicrobial polypropylene[J]. Engineering Plastics Application, 2023, 51(10): 186-191.
[2] 王璐, 关国平, 王富军, 等. 生物医用纺织材料及其器件研究进展[J]. 纺织学报, 2016, 37(2): 133-140.
WANG Lu, GUAN Guoping, WANG Fujun, et al. Research progress on biomedical textile materials and devices[J]. Journal of Textile Research, 2016, 37(2): 133-140.
[3] YILMAZ F. Application of achillea millefolium as a natural antibacterial agent in finishing of textile[J]. Fibers and Polymers, 2023, 24(9): 3175-3182.
doi: 10.1007/s12221-023-00309-2
[4] GAO S M, GUO H Y, JIN Q P, et al. Development of a poly(cation-π) antibacterial agent for thermal and moisture managing in PET fabrics[J]. Advanced Functional Materials, 2025, 35(23): 2420340.
doi: 10.1002/adfm.v35.23
[5] 陈蓉, 邱赛飞, 游雨欣, 等. 纳米氢氧化镁对茶叶黑斑病原真菌活性的抑制效应研究[J]. 农业生物技术学报, 2019, 27(8): 1460-1466.
CHEN Rong, QIU Saifei, YOU Yuxin, et al. Study on the inhibition effect of nano-Mg (OH)2 to tea blackspot disease pathogenic fungi activity[J]. Journal of Agricultural Biotechnology, 2019, 27(8): 1460-1466.
[6] 张濛, 孟光, 张广伟, 等. 纳米银抗菌卫生巾抗菌效果及安全性研究[J]. 现代预防医学, 2015, 42(3): 560-562.
ZHANG Meng, MENG Guang, ZHANG Guangwei, et al. Antibacterial effects and security for nano-silver antibacterial sanitary napkins[J]. Modern Preventive Medicine, 2015, 42(3): 560-562.
[7] SOLIHAT N N, HIDAYAT A F, ILYAS R A, et al. Recent antibacterial agents from biomass derivatives: characteristics and applications[J]. Journal of Bioresources and Bioproducts, 2024, 9(3): 283-309.
doi: 10.1016/j.jobab.2024.02.002
[8] ZHANG Y N, ZHENG M J, WANG Z, et al. Discovery of novel antibacterial agent for the infected wound treatment: all-hydrocarbon stapling optimization of LL-37[J]. Theranostics, 2024, 14(3): 1181-1194.
doi: 10.7150/thno.87916 pmid: 38323312
[9] 曹聪聪, 汤龙世, 刘元军, 等. 无机抗菌织物的研究进展[J]. 纺织学报, 2022, 43(11): 203-211.
doi: 10.13475/j.fzxb.20210309409
CAO Congcong, TANG Longshi, LIU Yuanjun, et al. Research progress of inorganic antibacterial fabrics[J]. Journal of Textile Research, 2022, 43(11): 203-211.
doi: 10.13475/j.fzxb.20210309409
[10] CHAI S, XIE Y T, YANG L H. Antibacterial applications of elemental nanomaterials[J]. Current Opinion in Solid State and Materials Science, 2022, 26(6): 101043.
doi: 10.1016/j.cossms.2022.101043
[11] ZHOU Z Y, ZHOU S G, ZHANG X R, et al. Quaternary ammonium salts: insights into synthesis and new directions in antibacterial applications[J]. Bioconjugate Chemistry, 2023, 34(2): 302-325.
doi: 10.1021/acs.bioconjchem.2c00598 pmid: 36748912
[12] KANDOTH N, GUPTA S, RAKSHA K, et al. Harnessing multi-modal exciton migration in hybrid halide perovskite for photocatalytic amplification of nitric oxide and hydroxyl radicals toward bacterial killing and biofilm disruption[J]. Advanced Functional Materials, 2024, 34(28): 2400998.
doi: 10.1002/adfm.v34.28
[13] LIU Q P, GAO S B, FANG J, et al. Novel fungal diphenyl ether biosynthetic gene clusters encode a promiscuous oxidase for elevated antibacterial activities[J]. Chemical Science, 2024, 15(35): 14248-14253.
doi: 10.1039/D4SC01435A
[14] 高雪, 李政, 巩继贤, 等. 新型纺织用生物基抗菌整理剂的研究进展[J]. 纺织学报, 2020, 41(2): 187-192.
GAO Xue, LI Zheng, GONG Jixian, et al. Research progress on new bio-antibacterial agents for textiles[J]. Journal of Textile Research, 2020, 41(2): 187-192.
doi: 10.1177/004051757104100301
[15] LI Y, LIU X, XIANG S F, et al. Fabrication of perm-inspired Janus polyester fabric via unilateral surface engineering for unidirectional water transport and antibacterial properties[J]. Chemical Engineering Journal, 2025, 503: 158456.
doi: 10.1016/j.cej.2024.158456
[16] OH I, YANG W Y, PARK J, et al. In vitro Na+/K+-ATPase inhibitory activity and antimicrobial activity of sesquiterpenes isolated from Thujopsis dolabrata[J]. Archives of Pharmacal Research, 2011, 34(12): 2141-2147.
doi: 10.1007/s12272-011-1218-5
[17] HELANDER I M, NURMIAHO-LASSILA E L, AHVENAINEN R, et al. Chitosan disrupts the barrier properties of the outer membrane of gram-negative bacteria[J]. International Journal of Food Microbiology, 2001, 71(2/3): 235-244.
doi: 10.1016/S0168-1605(01)00609-2
[18] IQBAL S, RAFIQUE M S, IQBAL N, et al. Synergistic effect of silver-nanodiamond composite as an efficient antibacterial agent against E. coli and S. aureus[J]. Heliyon, 2024, 10(9): e30500.
doi: 10.1016/j.heliyon.2024.e30500
[19] 刘海弟, 张婧坤, 薛杨, 等. 海泡石负载离子液体制备高热稳定性抗菌剂[J]. 中国粉体技术, 2022, 28(6): 1-9.
LIU Haidi, ZHANG Jingkun, XUE Yang, et al. Preparation of high thermal-stable antibacterial material with sepiolite droped ionic liquid[J]. China Powder Science and Technology, 2022, 28(6): 1-9.
[20] LU J, GUO J H. Disinfection spreads antimicrobial resistance[J]. Science, 2021, 371(6528): 474.
doi: 10.1126/science.abg4380 pmid: 33510019
[21] BUCATARU C, CIOBANASU C. Antimicrobial peptides: opportunities and challenges in overcoming resistance[J]. Microbiological Research, 2024, 286: 127822.
doi: 10.1016/j.micres.2024.127822
[22] MA L L, ZHANG Z H, LI J, et al. A new antimicrobial agent: poly (3-hydroxybutyric acid) oligomer[J]. Macromolecular Bioscience, 2019, 19(5): 1970014.
doi: 10.1002/mabi.v19.5
[23] 彭晶. 服装用无机抗菌剂改性PET纤维研究进展[J]. 合成树脂及塑料, 2025, 42(1): 76-79, 86.
PENG Jing. Research progress on PET fiber modified with inorganic antibacterial agents for clothing[J]. China Synthetic Resin and Plastics, 2025, 42(1): 76-79, 86.
[24] 任鹤宁, 马林玉. 功能性纺织品研究进展[J]. 纺织标准与质量, 2023(3): 5-11.
REN Hening, MA Linyu. Research progress on functional textiles[J]. Textile Standards and Quality, 2023(3): 5-11.
[25] GAO Y, CRANSTON R. Recent advances in antimicrobial treatments of textiles[J]. Textile Research Journal, 2008, 78(1): 60-72.
doi: 10.1177/0040517507082332
[26] SILVER L L. Challenges of antibacterial discovery[J]. Clinical Microbiology Reviews, 2011, 24(1): 71-109.
doi: 10.1128/CMR.00030-10 pmid: 21233508
[27] GUPTA A, MUMTAZ S, LI C H, et al. Combatting antibiotic-resistant bacteria using nanomaterials[J]. Chemical Society Reviews, 2019, 48(2): 415-427.
doi: 10.1039/c7cs00748e pmid: 30462112
[1] WANG Jinqi, ZHAI Qian, YU Senlong, ZHU Qianqin, ZHOU Zhe, XIANG Hengxue, ZHU Meifang. Research progress on medical protective applications of polyethylene microfiber [J]. Journal of Textile Research, 2026, 47(03): 156-165.
[2] WEI Jianfei, WEI Yanying, MA Chaohui, HU Xiaopeng, BING Linhan, FAN Yu, LIN Binze, DONG Zhenfeng, ZHU Zhiguo, WANG Rui. Scalable synthesis of carbon dots from polyethylene terephthalate waste for synergistical enhancement of flame retardancy and mechanical properties of polyamide 66 fibers [J]. Journal of Textile Research, 2026, 47(02): 37-46.
[3] WANG Bin, HOU Zeming, XU Yingjun, WANG Yuzhong. Preparation and properties of high flame-retardant viscose fibers [J]. Journal of Textile Research, 2026, 47(02): 47-55.
[4] SUN Heqing, ZHAO Congying, WU Bingxue, ZHANG Youwei. Preparation and properties of long-lasting antimicrobial polyamide 66 fibers [J]. Journal of Textile Research, 2025, 46(09): 66-73.
[5] ZHU Lei, LI Xiaojun, CHENG Chunzu, XU Jigang, DU Xinyu. Influences of sodium tetraborate/tannic acid cross-linking on structure and properties of calcium alginate fibers [J]. Journal of Textile Research, 2025, 46(07): 28-36.
[6] XU Liya, WANG Zhen, YANG Hongjie, WANG Wei. Preparation and antibacterial property of zinc oxide-silver/bio-based polyamide 56 composite nanofiber membranes [J]. Journal of Textile Research, 2025, 46(07): 37-45.
[7] ZHANG Zeqi, ZHOU Tao, ZHOU Wenqi, FAN Zhongyao, YANG Jialei, CHEN Guoyin, PAN Shaowu, ZHU Meifang. Research progress in conductive fibers for electrophysiological signal monitoring [J]. Journal of Textile Research, 2025, 46(05): 70-76.
[8] GUO Jieyan, XU Yingwen, DING Fang, REN Xuehong. Research progress in the applications of N-halamine antibacterial agents and their modified fibers [J]. Journal of Textile Research, 2025, 46(04): 255-263.
[9] OU Zongquan, YU Jinchao, PAN Zhijuan. Spinning of photochromic polylactic acid/polyhydroxybutyrate blend fiber and its structure and properties [J]. Journal of Textile Research, 2024, 45(12): 9-17.
[10] QIN Yimin. Research progress in zinc and copper containing wound dressings [J]. Journal of Textile Research, 2023, 44(05): 213-219.
[11] ZHANG Jing, HUANG Zhiheng, NIU Guangliang, LIANG Sheng, YANG Lüyun, WEI Lei, ZHOU Shifeng, HOU Chong, TAO Guangming. Review on thermal-drawn multimaterial fiber optoelectronics [J]. Journal of Textile Research, 2023, 44(01): 11-20.
[12] CHEN Chen, HAN Yi, SUN Haiyan, YAO Chengkai, GAO Chao. Flower-shaped graphene oxide in-situ unfolding polyamide-6 and functional fibers thereof [J]. Journal of Textile Research, 2023, 44(01): 47-55.
[13] PU Haihong, HE Pengxin, SONG Baiqing, ZHAO Dingying, LI Xinfeng, ZHANG Tianyi, MA Jianhua. Preparation of cellulose/carbon nanotube composite fiber and its functional applications [J]. Journal of Textile Research, 2023, 44(01): 79-86.
[14] ZHU Yanlong, GU Yingshu, GU Xiaoxia, DONG Zhenfeng, WANG Bin, ZHANG Xiuqin. Preparation and properties of poly(lactic acid)/ZnO fiber with antibacterial and anti-ultraviolet functions [J]. Journal of Textile Research, 2022, 43(08): 40-47.
[15] LIU Ke, CHEN Shuang, XIAO Ru. Preparation and properties of synergistic flame retardant copolyamide 6 fiber with phosphaphenanthrene group [J]. Journal of Textile Research, 2021, 42(07): 11-18.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!