Marciel Alice, Borges Joel, Pereira Luiz, Silva Rui F, Graça Manuel
i3N and Department of Physics, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.
CICECO, Aveiro Institute of Materials, Department of Materials and Ceramic Engineering, University of Aveiro, 3810-193 Aveiro, Portugal.
Materials (Basel). 2025 Jun 23;18(13):2964. doi: 10.3390/ma18132964.
The design and investigation of electrochromic devices have advanced significantly, including distinct applications such as self-charged smart windows, aerospace interactive windows, low power flexible and ecofriendly displays, automatic dimming rearview, wearable smart textiles, military and civilian camouflage systems, electrochromic sensors, among others. Although significant progress has been made in related fields, achieving the full potential of electrochromic devices to meet the standards of maturity and practical applications remains a persistent challenge. Electrochromic devices are typically multilayered structures that can be designed as either rigid or flexible systems, depending on the type of substrate employed. Conventional electrochromic devices comprise layered structures that include transparent electrodes, electrochromic materials, ionic conductors, and ion storage materials. On the other hand, multifunctional systems integrate bifunctional materials or distinct functional layers to simultaneously achieve optical modulation and additional capabilities such as energy storage. The development of advanced materials, comprehensive electrochemical kinetic analysis, the optimization and advancement of process techniques and deposition methods, and innovative device designs are active areas of extensive global research. This review focuses on the recent advances in multifunctional electrochromic materials and devices with particular emphasis on the integration of electrochromic technology with other functional technologies. It further identifies current challenges, proposes potential solutions, and outlines future research directions focused on advancing this technology in both niche and scalable applications.
电致变色器件的设计与研究取得了显著进展,包括自充电智能窗、航空航天交互式窗户、低功耗柔性环保显示器、自动调光后视镜、可穿戴智能纺织品、军事和民用伪装系统、电致变色传感器等不同应用。尽管相关领域已取得重大进展,但要充分发挥电致变色器件的潜力以达到成熟度和实际应用标准,仍然是一项持续的挑战。电致变色器件通常是多层结构,根据所采用的基板类型,可设计为刚性或柔性系统。传统的电致变色器件包括分层结构,其中有透明电极、电致变色材料、离子导体和离子存储材料。另一方面,多功能系统集成了双功能材料或不同的功能层,以同时实现光调制和诸如能量存储等附加功能。先进材料的开发、全面的电化学动力学分析、工艺技术和沉积方法的优化与进步以及创新的器件设计,是全球广泛研究的活跃领域。本综述重点关注多功能电致变色材料和器件的最新进展,特别强调电致变色技术与其他功能技术的整合。它进一步识别了当前的挑战,提出了潜在的解决方案,并概述了未来的研究方向,重点是在特定领域和可扩展应用中推动这项技术的发展。