Poddar Mrinal, Chang Yen-Hsiang, Chiu Fang-Chyou
Department of Chemical and Materials Engineering, Chang Gung University, Taoyuan 333, Taiwan.
Department of General Dentistry, Chang Gung Memorial Hospital, Taoyuan 333, Taiwan.
Polymers (Basel). 2024 Dec 20;16(24):3564. doi: 10.3390/polym16243564.
The one-dimensional nanomaterials known as nanofibers have remarkable qualities, such as large surface areas, adjustable porosity, and superior mechanical strength. Ionomers, types of polymers, have ionic functional groups that give them special properties, including high mechanical strength, water absorption capacity, and ionic conductivity. Integrating ionomers and nanofibers with diverse materials and advanced methodologies has been shown to improve the mechanical strength, processing capacity, and multifunctional attributes of ionomeric nanofibers. One-dimensional ionomeric nanomaterials offer a versatile platform for developing functional materials with ionic functionalities. This mini review critically examines recent progress in the development of ionomeric nanofibers, highlighting innovative fabrication techniques and their expanding applications across energy storage, environmental remediation, healthcare, advanced textiles, and electronics.
被称为纳米纤维的一维纳米材料具有显著特性,如大表面积、可调节孔隙率和卓越的机械强度。离聚物作为一类聚合物,具有离子官能团,赋予它们特殊性能,包括高机械强度、吸水能力和离子导电性。将离聚物和纳米纤维与各种材料及先进方法相结合,已证明可提高离聚体纳米纤维的机械强度、加工能力和多功能属性。一维离聚体纳米材料为开发具有离子功能的功能材料提供了一个通用平台。本综述批判性地审视了离聚体纳米纤维开发的最新进展,突出了创新制造技术及其在能量存储、环境修复、医疗保健、先进纺织品和电子领域不断扩展的应用。