Li Wulong, Zhang Yaoxin, Yu Zhen, Zhu Tianxue, Kang Jialiang, Liu Kexin, Li Zhanxiong, Tan Swee Ching
College of Textile and Clothing Engineering, Soochow University, Suzhou 215021, People's Republic of China.
Department of Materials Science and Engineering, National University of Singapore, Singapore, 117574, Singapore.
ACS Nano. 2022 Sep 27;16(9):14779-14791. doi: 10.1021/acsnano.2c05624. Epub 2022 Sep 14.
Fabrics have been used broadly in daily life for an enormous variety of applications due to their intrinsic advantages, such as flexibility, renewability, and good processability. Integrating natural fabrics with metal-organic frameworks (MOFs) is an effective strategy to improve the added value of textiles with special functionalities. Here, a facile, low-cost, and scalable technology is reported for the in situ growth of MOFs on cotton fabrics. A uniform and dense coating of regular octahedral Cu-1,3,5-benzenetricarboxylic acid (CuBTC) crystals was formed on the fiber surface, followed by treatment with 1,1,2,2-perfluorooctyltriethoxysilane and triethoxyoctylsilane to create a superhydrophobic CuBTC@cotton fabric (SMCF), which greatly improved its water stability and extended superhydrophobic CuBTC's potential applications. The as-prepared MCF has a specific surface area of 229 m/g, which is 11 times that of pristine fabrics (21 m/g). This high porosity further endows the fabric with enhanced loading capacity of essential oils to enable excellent antibacterial ability. Moreover, the SMCF also exhibits excellent self-cleaning, UV shielding, and anti-icing performances. In addition, we performed COMSOL simulations to investigate the dynamic freezing process of water on the surface of samples, which agrees well with our experimental observations. By combining the merits of both fabrics and MOFs, the MCF is expected to extend the applications of traditional textiles in antifouling, safety, the fragrance industry, and healthcare for the next-generation multifunctional fabrics.
由于其固有的优势,如柔韧性、可再生性和良好的加工性能,织物在日常生活中已被广泛应用于各种各样的领域。将天然织物与金属有机框架(MOF)相结合是提高具有特殊功能的纺织品附加值的有效策略。在此,报道了一种简便、低成本且可扩展的技术,用于在棉织物上原位生长MOF。在纤维表面形成了均匀且致密的规则八面体1,3,5-苯三甲酸铜(CuBTC)晶体涂层,随后用1,1,2,2-全氟辛基三乙氧基硅烷和三乙氧基辛基硅烷进行处理,以制备超疏水的CuBTC@棉织物(SMCF),这大大提高了其水稳定性并扩展了超疏水CuBTC的潜在应用。所制备的MCF的比表面积为229 m²/g,是原始织物(21 m²/g)的11倍。这种高孔隙率进一步赋予织物更高的精油负载能力,使其具有出色的抗菌能力。此外,SMCF还表现出优异的自清洁、紫外线屏蔽和防冰性能。此外,我们进行了COMSOL模拟,以研究水在样品表面的动态冻结过程,这与我们的实验观察结果非常吻合。通过结合织物和MOF的优点,MCF有望扩展传统纺织品在防污、安全、香料工业和医疗保健等领域的应用,用于下一代多功能织物。