纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 115-121.doi: 10.13475/j.fzxb.20251007001
郭欣蕊1, 陈相丞1, 巫瑛2, 王峰3, 苏静1, 王鸿博1(
)
GUO Xinrui1, CHEN Xiangcheng1, WU Ying2, WANG Feng3, SU Jing1, WANG Hongbo1(
)
摘要:
为克服现有超疏水改性方法中工艺复杂、设备要求高及环境相容性差等不足,采用六水合氯化铁(FeCl3·6H2O)与十六烷基三甲氧基硅烷(HDTMS)对棉织物进行整理,并对其化学结构、结晶结构、表面形貌及元素组成、超疏水性能及其耐久性、自清洁性能、油水分离性能进行表征。结果表明:棉织物表面成功负载FeOOH纳米颗粒及HDTMS薄膜;整理后棉织物静态水接触角高达162.5°,滚动角为6.06°,咖啡、茶、牛奶及染料溶液滴在织物表面均能保持球形,而油滴被迅速吸收,表现出良好的选择润湿性;经800次摩擦、10次洗涤循环,或在pH值为1.0~13.0的酸、碱及盐溶液中浸泡24 h后,该织物仍能保持超疏水性能;在油水分离过程中,初始分离效率达98.9%,经10次分离循环后仍保持在97%以上,具有优异的分离稳定性;同时,该织物还具备良好的自清洁性能。该超疏水棉织物制备过程简单,环境友好,为新型油水分离材料开发提供了潜在途径。
中图分类号:
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