Slejko Emanuele Alberto, Carraro Giovanni, Huang Xiongchuan, Smerieri Marco
IMEM-CNR, Institute of Materials for Electronics and Magnetism of the National Research Council of Italy, Via Dodecaneso 33, 16146 Genova, Italy.
School of Information Science and Technology, Fudan University, Handan Rd. 220, Shanghai 200433, China.
Polymers (Basel). 2024 Sep 4;16(17):2514. doi: 10.3390/polym16172514.
The production of nanofibers has become a significant area of research due to their unique properties and diverse applications in various fields, such as biomedicine, textiles, energy, and environmental science. Electrospinning, a versatile and scalable technique, has gained considerable attention for its ability to fabricate nanofibers with tailored properties. Among the wide array of conductive polymers, poly(3,4-ethylenedioxythiophene) (PEDOT) has emerged as a promising material due to its exceptional conductivity, environmental stability, and ease of synthesis. The electrospinning of PEDOT-based nanofibers offers tunable electrical and optical properties, making them suitable for applications in organic electronics, energy storage, biomedicine, and wearable technology. This review, with its comprehensive exploration of the fabrication, properties, and applications of PEDOT nanofibers produced via electrospinning, provides a wealth of knowledge and insights into leveraging the full potential of PEDOT nanofibers in next-generation electronic and functional devices by examining recent advancements in the synthesis, functionalization, and post-treatment methods of PEDOT nanofibers. Furthermore, the review identifies current challenges, future directions, and potential strategies to address scalability, reproducibility, stability, and integration into practical devices, offering a comprehensive resource on conductive nanofibers.
由于纳米纤维具有独特的性能以及在生物医学、纺织、能源和环境科学等各个领域的广泛应用,其生产已成为一个重要的研究领域。静电纺丝作为一种通用且可扩展的技术,因其能够制造具有定制性能的纳米纤维而备受关注。在众多导电聚合物中,聚(3,4-乙撑二氧噻吩)(PEDOT)因其卓越的导电性、环境稳定性和易于合成而成为一种有前途的材料。基于PEDOT的纳米纤维的静电纺丝提供了可调节的电学和光学性能,使其适用于有机电子学、能量存储、生物医学和可穿戴技术等应用。这篇综述全面探讨了通过静电纺丝制备的PEDOT纳米纤维的制造、性能和应用,通过研究PEDOT纳米纤维合成、功能化和后处理方法的最新进展,为充分发挥PEDOT纳米纤维在下一代电子和功能器件中的潜力提供了丰富的知识和见解。此外,该综述还确定了当前在可扩展性、可重复性、稳定性以及集成到实际器件方面的挑战、未来方向和潜在策略,提供了关于导电纳米纤维的全面资源。