Zhu Ling, Liu Qi, Zhang Yuqian, Sun Hui, Chen Shuai, Liang Lishan, An Siying, Yang Xiaomei, Zang Ling
School of Pharmacy and Flexible Electronics Innovation Institute, Jiangxi Science & Technology Normal University, Nanchang 330013, China.
Jiangxi Provincial Key Laboratory of Flexible Electronics, Nanchang 330013, China.
Molecules. 2025 Jan 4;30(1):179. doi: 10.3390/molecules30010179.
Conducting polymers represent a crucial class of functional materials with widespread applications in diverse fields. Among these, poly(3,4-ethylenedioxythiophene) (PEDOT) and its derivatives have garnered significant attention due to their distinctive optical, electronic, and magnetic properties, as well as their exceptional tunability. These properties often exhibit intricate interdependencies, manifesting as synergistic, concomitant, or antagonistic relationships. In optics, PEDOTs are renowned for their high transparency and unique photoelectric responses. From an electrical perspective, they display exceptional conductivity, thermoelectric, and piezoelectric performance, along with notable electrochemical activity and stability, enabling a wide array of electronic applications. In terms of magnetic properties, PEDOTs demonstrate outstanding electromagnetic shielding efficiency and microwave absorption capabilities. Moreover, these properties can be precisely tailored through molecular structure modifications, chemical doping, and composite formation to suit various application requirements. This review systematically examines the mechanisms underlying the optoelectromagnetic properties of PEDOTs, highlights their tunability, and outlines prospective research directions. By providing critical theoretical insights and technical references, this review aims to advance the application landscape of PEDOTs.
导电聚合物是一类至关重要的功能材料,在各个领域有着广泛的应用。其中,聚(3,4-亚乙二氧基噻吩)(PEDOT)及其衍生物因其独特的光学、电子和磁性特性以及出色的可调性而备受关注。这些特性往往呈现出复杂的相互依存关系,表现为协同、伴随或拮抗关系。在光学方面,PEDOT以其高透明度和独特的光电响应而闻名。从电学角度来看,它们展现出卓越的导电性、热电和压电性能,以及显著的电化学活性和稳定性,从而实现了广泛的电子应用。在磁性方面,PEDOT表现出出色的电磁屏蔽效率和微波吸收能力。此外,通过分子结构修饰、化学掺杂和复合材料的形成,可以精确调整这些特性以满足各种应用需求。本综述系统地研究了PEDOT光电磁特性的潜在机制,突出了它们的可调性,并概述了未来的研究方向。通过提供关键的理论见解和技术参考,本综述旨在推动PEDOT的应用前景。