Senthilkumar Sri Harini, Ramasubramanian Brindha, Rao Rayavarapu Prasada, Chellappan Vijila, Ramakrishna Seeram
Centre for Nanofibers and Nanotechnology, Department of Mechanical Engineering, National University of Singapore, Singapore 117576, Singapore.
Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), #08-03, 2 Fusionopolis Way, Innovis, Singapore 138634, Singapore.
Polymers (Basel). 2023 Mar 24;15(7):1622. doi: 10.3390/polym15071622.
Electronic devices commonly use rechargeable Li-ion batteries due to their potency, manufacturing effectiveness, and affordability. Electrospinning technology offers nanofibers with improved mechanical strength, quick ion transport, and ease of production, which makes it an attractive alternative to traditional methods. This review covers recent morphology-varied nanofibers and examines emerging nanofiber manufacturing methods and materials for battery tech advancement. The electrospinning technique can be used to generate nanofibers for battery separators, the electrodes with the advent of flame-resistant core-shell nanofibers. This review also identifies potential applications for recycled waste and biomass materials to increase the sustainability of the electrospinning process. Overall, this review provides insights into current developments in electrospinning for batteries and highlights the commercialization potential of the field.
由于其高能量、制造效率和可承受性,电子设备通常使用可充电锂离子电池。静电纺丝技术提供了具有更高机械强度、快速离子传输和易于生产的纳米纤维,这使其成为传统方法的一个有吸引力的替代方案。这篇综述涵盖了最近形态各异的纳米纤维,并研究了用于电池技术进步的新兴纳米纤维制造方法和材料。随着阻燃核壳纳米纤维的出现,静电纺丝技术可用于制造电池隔膜和电极。本综述还确定了回收废料和生物质材料的潜在应用,以提高静电纺丝过程的可持续性。总体而言,本综述深入探讨了电池静电纺丝的当前发展,并突出了该领域的商业化潜力。