Toriello Mariela, Afsari Morteza, Shon Ho Kyong, Tijing Leonard D
Faculty of Engineering and Information Technology, University of Technology Sydney (UTS), 15 Broadway, Ultimo, NSW 2007, Australia.
Centre for Technology in Water and Wastewater, School of Civil and Environmental Engineering, University of Technology Sydney (UTS), 15 Broadway, Ultimo, NSW 2007, Australia.
Membranes (Basel). 2020 Aug 28;10(9):204. doi: 10.3390/membranes10090204.
Nanofibers are one of the most attractive materials in various applications due to their unique properties and promising characteristics for the next generation of materials in the fields of energy, environment, and health. Among the many fabrication methods, electrospinning is one of the most efficient technologies which has brought about remarkable progress in the fabrication of nanofibers with high surface area, high aspect ratio, and porosity features. However, neat nanofibers generally have low mechanical strength, thermal instability, and limited functionalities. Therefore, composite and modified structures of electrospun nanofibers have been developed to improve the advantages of nanofibers and overcome their drawbacks. The combination of electrospinning technology and high-quality nanomaterials via materials science advances as well as new modification techniques have led to the fabrication of composite and modified nanofibers with desired properties for different applications. In this review, we present the recent progress on the fabrication and applications of electrospun nanofiber composites to sketch a progress line for advancements in various categories. Firstly, the different methods for fabrication of composite and modified nanofibers have been investigated. Then, the current innovations of composite nanofibers in environmental, healthcare, and energy fields have been described, and the improvements in each field are explained in detail. The continued growth of composite and modified nanofiber technology reveals its versatile properties that offer alternatives for many of current industrial and domestic issues and applications.
纳米纤维因其独特的性能以及在能源、环境和健康领域作为下一代材料所具有的潜在特性,成为各种应用中最具吸引力的材料之一。在众多制造方法中,静电纺丝是最有效的技术之一,它在制备具有高表面积、高长径比和孔隙率特征的纳米纤维方面取得了显著进展。然而,纯纳米纤维通常机械强度低、热稳定性差且功能有限。因此,已开发出静电纺丝纳米纤维的复合和改性结构,以提升纳米纤维的优势并克服其缺点。通过材料科学的进步以及新的改性技术,将静电纺丝技术与高质量纳米材料相结合,已制造出具有不同应用所需性能的复合和改性纳米纤维。在本综述中,我们介绍了静电纺丝纳米纤维复合材料制造与应用的最新进展,以勾勒出各领域进展的路线图。首先,研究了复合和改性纳米纤维的不同制造方法。然后,描述了复合纳米纤维在环境、医疗保健和能源领域的当前创新,并详细解释了每个领域的改进情况。复合和改性纳米纤维技术的持续发展揭示了其多功能特性,为当前许多工业和家庭问题及应用提供了替代方案。