Xu Gang, Zhang Wei, Zhu Guangjun, Xia Huan, Zhang Hanning, Xie Qian, Jin Peng, Zhang Haoyu, Yi Chengjie, Zhang Ruqian, Ji Lingfeng, Shui Tao, Moloto Nosipho, She Wei, Sun ZhengMing
Jiangsu Key Laboratory of Advanced Metallic Materials, School of Materials Science and Engineering, Southeast University, Nanjing, 211189, China.
State Key Laboratory of High Performance Civil Engineering Materials, Southeast University, Nanjing, 211189, China.
Adv Sci (Weinh). 2024 Jul;11(28):e2401948. doi: 10.1002/advs.202401948. Epub 2024 May 20.
The integration of electrochromic devices and energy storage systems in wearable electronics is highly desirable yet challenging, because self-powered electrochromic devices often require an open system design for continuous replenishment of the strong oxidants to enable the coloring/bleaching processes. A self-powered electrochromic device has been developed with a close configuration by integrating a Zn/MnO ionic battery into the Prussian blue (PB)-based electrochromic system. Zn and MnO electrodes, as dual shared electrodes, the former one can reduce the PB electrode to the Prussian white (PW) electrode and serves as the anode in the battery; the latter electrode can oxidize the PW electrode to its initial state and acts as the cathode in the battery. The bleaching/coloring processes are driven by the gradient potential between Zn/PB and PW/MnO electrodes. The as-prepared Zn||PB||MnO system demonstrates superior electrochromic performance, including excellent optical contrast (80.6%), fast self-bleaching/coloring speed (2.0/3.2 s for bleaching/coloring), and long-term self-powered electrochromic cycles. An air-working Zn||PB||MnO device is also developed with a 70.3% optical contrast, fast switching speed (2.2/4.8 s for bleaching/coloring), and over 80 self-bleaching/coloring cycles. Furthermore, the closed nature enables the fabrication of various flexible electrochromic devices, exhibiting great potentials for the next-generation wearable electrochromic devices.
将电致变色器件和能量存储系统集成到可穿戴电子产品中是非常理想的,但也具有挑战性,因为自供电的电致变色器件通常需要开放式系统设计,以便持续补充强氧化剂,从而实现着色/褪色过程。通过将锌/二氧化锰离子电池集成到基于普鲁士蓝(PB)的电致变色系统中,开发了一种具有紧密结构的自供电电致变色器件。锌电极和二氧化锰电极作为双共享电极,前者可将PB电极还原为普鲁士白(PW)电极,并在电池中用作阳极;后者可将PW电极氧化至其初始状态,并在电池中用作阴极。漂白/着色过程由锌/ PB和PW /二氧化锰电极之间的梯度电势驱动。所制备的锌|| PB ||二氧化锰系统表现出优异的电致变色性能,包括出色的光学对比度(80.6%)、快速的自漂白/着色速度(漂白/着色分别为2.0 / 3.2秒)以及长期的自供电电致变色循环。还开发了一种空气工作的锌|| PB ||二氧化锰器件,其光学对比度为70.3%,切换速度快(漂白/着色分别为2.2 / 4.8秒),并且具有超过80次的自漂白/着色循环。此外,这种封闭结构能够制造各种柔性电致变色器件,在下一代可穿戴电致变色器件方面展现出巨大潜力。