纺织学报 ›› 2026, Vol. 47 ›› Issue (03): 201-207.doi: 10.13475/j.fzxb.20251102102
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。
中图分类号:
| [1] | MADIGAN M T, MARTINKO J M, BENDER K S, et al. Brock biology of microorganisms[M]. 16th ed. Boston: Pearson Education, 2021:1-39. |
| [2] | 李兰娟, 王贵强. 抗菌药物临床应用与耐药性防控[M]. 北京: 人民卫生出版社,2021:1-55. |
| LI Lanjuan, WANG Guiqiang. Clinical application of antibacterial drugs and prevention and control of drug resistance[M]. Beijing: People's Medical Publishing House, 2021:1-55. | |
| [3] | 赵向阳, 闫凯, 龙家杰. 超临界二氧化碳流体中SCFX-AYRL染料的溶解性研究[J]. 纺织学报, 2024, 45(6): 98-104. |
| ZHAO Xiangyang, YAN Kai, LONG Jiajie. Investigation on solubility of SCFX-AYRL dye in supercritical carbon dioxide[J]. Journal of Textile Research, 2024, 45(6): 98-104. | |
| [4] | 熊坦平, 谭飞, 黄成, 等. 氯胺接枝涤纶/锦纶超细纤维针织物的抗菌性能[J]. 纺织学报, 2022, 43(8): 101-106. |
| XIONG Tanping, TAN Fei, HUANG Cheng, et al. Antimicrobial properties of chloramine-grafted polyester/polyamide microfiber knitted fabrics[J]. Journal of Textile Research, 2022, 43(8): 101-106. | |
| [5] | 韩华, 胡安然, 孙艺文, 等. 碘释放抗菌涂层棉织物的制备及其在伤口修复中的应用[J]. 纺织学报, 2024, 45(5): 113-120. |
| HAN Hua, HU Anran, SUN Yiwen, et al. Fabrication of antibacterial polymers coated cotton fabrics with I2 release for wound healing[J]. Journal of Textile Research, 2024, 45(5): 113-120. | |
| [6] | 刘殷, 任学宏, HUANG Tungshi. 电子辐射技术抗菌整理棉织物研究[J]. 化工新型材料, 2015, 43(11): 132-134. |
| LIU Yin, REN Xuehong, HUANG Tungshi. Antibacterial finishing of cotton fabrics by electron beam irradiation[J]. New Chemical Materials, 2015, 43(11): 132-134. | |
| [7] | 周莉, 傅佳佳, 高卫东, 等. 基于电子束辐照加工的纯棉织物抗菌功能化研究[J]. 化工新型材料, 2016, 44(11): 183-186. |
| ZHOU Li, FU Jiajia, GAO Weidong, et al. Study on fabrics antibacterial functionalization based on electron beam irradiation[J]. New Chemical Materials, 2016, 44(11): 183-186. | |
| [8] | 代国亮. 聚酯纤维及织物的电子束辐照改性[D]. 上海: 东华大学, 2015: 45-46. |
| DAI Guoliang. The modification of polyester fiber and fabric using electron beam irradiation[D]. Shanghai: Donghua University, 2015: 45-46. | |
| [9] | 杨文英, 冠秀珍, 边金城. 无纺布在灭菌中耐辐射性的研究[J]. 中国消毒学杂志, 1992, 9(1): 26-29. |
| YANG Wenying, GUAN Xiuzhen, BIAN Jincheng. Study on radiotolerance of unwoven fabric in sterilization[J]. Chinese Journal of Disinfection, 1992, 9(1): 26-29. | |
| [10] | 王全, 伍建, 许咨宗. 辐射消毒用电子束剂量场的研究[J]. 核电子学与探测技术, 2005, 25(6): 897-900, 886. |
| WANG Quan, WU Jian, XU Zizong. Study of dose distribution from electron beam[J]. Nuclear Electronics & Detection Technology, 2005, 25(6): 897-900, 886. | |
| [11] |
张雨, 黄卓, 李明生, 等. 电子束辐照对微生物的消毒效果观察[J]. 中国消毒学杂志, 2025, 42(5): 341-343.
doi: 10.11726/j.issn.1001-7658.2025.05.006 |
|
ZHANG Yu, HUANG Zhuo, LI Mingsheng, et al. Observation of disinfection effect of electron beams against microorganisms[J]. Chinese Journal of Disinfection, 2025, 42(5): 341-343.
doi: 10.11726/j.issn.1001-7658.2025.05.006 |
|
| [12] | STEFANIE Cuypers. Microbial biofilm formation and its clinical implications[J]. Clin Microbiol, 2025, 14(1):1000419. |
| [13] |
VARSHNEY S, SAIN A, GUPTA D, et al. Factors affecting bacterial adhesion on selected textile fibres[J]. Indian Journal of Microbiology, 2021, 61(1): 31-37.
doi: 10.1007/s12088-020-00903-5 pmid: 33505090 |
| [14] |
OLIVER J D. Recent findings on the viable but nonculturable state in pathogenic bacteria[J]. FEMS Microbiology Reviews, 2010, 34(4): 415-425.
doi: 10.1111/j.1574-6976.2009.00200.x pmid: 20059548 |
| [15] | GOU Y, LIU D, XIN Y, et al. Viable but nonculturable state in the zoonotic pathogen Bartonella henselae induced by low-grade fever temperature and antibiotic treatment[J]. Front. Cell. Infect. Microbiol. 2024.DOI: 10.3389/fcimb.2024.1486426. |
| [16] | 徐振波, 钟菲凤, 赵喜红, 等. 在生物被膜中活但不可培养状态细胞的形成与调控研究进展[J]. 浙江大学学报(农业与生命科学版), 2024, 50(4): 568-583. |
| XU Zhenbo, ZHONG Feifeng, ZHAO Xihong, et al. Research progress on the formation and regulation of viable but nonculturable cells in biofilms[J]. Journal of Zhejiang University (Agriculture and Life Sciences), 2024, 50(4): 568-583. | |
| [17] |
DEL ROSARIO AGUSTÍN M, STENGEL P, KELLERMEIER M, et al. Monitoring growth and removal of pseudomonas biofilms on cellulose-based fabrics[J]. Microorganisms, 2023, 11(4): 892.
doi: 10.3390/microorganisms11040892 |
| [18] | BANDARA C D, SINGH S, AFARA I O, et al. Bactericidal effects of natural nanotopography of dragonfly wing on Escherichia coli[J]. ACS Applied Materials & Interfaces, 2017, 9(8): 6746-6760. |
| [19] |
IVANOVA E P, HASAN J, WEBB H K, et al. Natural bactericidal surfaces: mechanical rupture of pseudomonas aeruginosa cells by cicada wings[J]. Small, 2012, 8(16): 2489-2494.
doi: 10.1002/smll.201200528 pmid: 22674670 |
| [20] | 曾俊谚. 钛合金激光表面仿生微纳米结构制备及其物理抗菌性能研究[D]. 成都: 西南交通大学, 2023:1-40. |
| ZENG Junyan. Investigation on bioinspired micro-nano structures directional growth of Ti6Ai4V surface and their physical bactericidal behavious[D]. Chengdu: Southwest Jiaotong University, 2023:1-40. | |
| [21] |
KANG S, PINAULT M, PFEFFERLE L D, et al. Single-walled carbon nanotubes exhibit strong antimicrobial activity[J]. Langmuir, 2007, 23(17): 8670-8673.
doi: 10.1021/la701067r pmid: 17658863 |
| [22] |
IVANOVA E P, HASAN J, WEBB H K, et al. Bactericidal activity of black silicon[J]. Nature Communications, 2013, 4: 2838.
doi: 10.1038/ncomms3838 pmid: 24281410 |
| [23] | 裴亚猛. 聚丙烯基抗菌复合材料表面微纳结构的制备及性能研究[D]. 广州: 广东工业大学, 2024:1-43. |
| PEI Yameng. Preparation and performance of micro-nano structures on the surface of polypropylene-based antimicrobial composite materials[D]. Guangzhou: Guangdong University of Technology, 2024:1-43. | |
| [24] |
ARIAS S L, CHENG M K, CIVANTOS A, et al. Ion-induced nanopatterning of a bacterial cellulose hydrogel[J]. ACS Applied Nano Materials, 2020, 3(7): 6719-6728.
doi: 10.1021/acsanm.0c01151 |
| [25] |
ARIAS S L, DEVORKIN J, SPEAR J C, et al. Bacterial envelope damage inflicted by bioinspired nanostructures grown in a hydrogel[J]. ACS Applied Bio Materials, 2020, 3(11): 7974-7988.
doi: 10.1021/acsabm.0c01076 pmid: 35019537 |
| [26] | AMAR Velic. Mechanics of bacterial interaction and geometry enhancement on nanopatterned surfaces[D]. Brisbane: Queensland University,2021:1-30. |
| [27] |
LI J, BUSSCHER H J, SWARTJES J J T M, et al. Residence-time dependent cell wall deformation of different Staphylococcus aureus strains on gold measured using surface-enhanced-fluorescence[J]. Soft Matter, 2014, 10(38): 7638-7646.
doi: 10.1039/C4SM00584H |
| [1] | 侯琳, 宋悦悦, 马军, 徐炎炎, 武诣焜, 樊威. 个体热防护材料研究现状与发展趋势[J]. 纺织学报, 2026, 47(03): 166-174. |
| [2] | 陈思琦, 金煜涵, 陈琳, 王芳, 王玉忠. 基于阳离子-π相互作用构建的耐磨阻燃涂层棉织物[J]. 纺织学报, 2026, 47(03): 192-200. |
| [3] | 王业飞, 许子傲, 俞建勇, 丁彬, 李召岭. 个人恒温热管理织物的研究进展[J]. 纺织学报, 2026, 47(03): 208-216. |
| [4] | 王世杰, 孙辉, 于斌. 聚乙烯醇/牡丹皮提取物复合纳米静电纺丝膜的制备及其抗菌性能[J]. 纺织学报, 2026, 47(02): 56-64. |
| [5] | 孙鹤情, 赵聪颖, 吴冰雪, 张幼维. 长效型抗菌聚酰胺 66 纤维的制备及其性能[J]. 纺织学报, 2025, 46(09): 66-73. |
| [6] | 许云凯, 宋婉萌, 张旭, 刘云. 单宁酸基高效阻燃Lyocell织物的制备及其性能[J]. 纺织学报, 2025, 46(08): 145-153. |
| [7] | 陈展毓, 俞森龙, 周家良, 朱丽萍, 周哲, 相恒学, 朱美芳. 有机膦酸改性聚乳酸织物的制备及其性能[J]. 纺织学报, 2025, 46(08): 154-163. |
| [8] | 黄春月, 黄鑫, 杜海娟, 徐文杰, 杨雪梅, 万科研, 李旭, 高杰. 钼氧簇复合物整理剂制备及其整理棉织物的防紫外线性能[J]. 纺织学报, 2025, 46(04): 138-145. |
| [9] | 赵祥璐, 方寅春, 李伟. 超疏水自清洁结构色织物的制备及其性能[J]. 纺织学报, 2025, 46(04): 154-161. |
| [10] | 郭洁琰, 徐颖雯, 丁放, 任学宏. 卤胺抗菌剂及其改性纤维的应用研究进展[J]. 纺织学报, 2025, 46(04): 255-263. |
| [11] | 郭庆, 毛阳顺, 任亚杰, 刘济民, 王怀芳, 朱平. 基于漆酶一步催化法的羊毛织物原位染色及阻燃功能化[J]. 纺织学报, 2025, 46(02): 161-169. |
| [12] | 张洁, 郭鑫源, 关晋平, 程献伟, 陈国强. 磷/氮阻燃剂原位沉积对棉织物的耐久阻燃改性[J]. 纺织学报, 2025, 46(02): 180-187. |
| [13] | 宋婉萌, 王宝弘, 孙宇, 杨家祥, 刘云, 王玉忠. 兼具力学性能与高效阻燃性能粘胶织物的制备及其性能[J]. 纺织学报, 2025, 46(02): 188-196. |
| [14] | 李鑫, 叶培培, 赵晓曼, 王鸿博, 杨国荣, 洪剑寒. 氧化铋-硅橡胶基X射线防护织物的制备及性能[J]. 纺织学报, 2025, 46(02): 227-235. |
| [15] | 肖鑫, 李伟, 卢润, 姜会钰, 李青. 等离子体协同过氧化氢活化体系对纯棉水刺非织造布的练漂处理[J]. 纺织学报, 2024, 45(12): 118-127. |
|
||