open access publication

Article, 2024

Potential Gradient‐Driven Dual‐Functional Electrochromic and Electrochemical Device Based on a Shared Electrode Design

Advanced Science, ISSN 2198-3844, Page e2401948, 10.1002/advs.202401948

Contributors

Xu, Gang [1] Zhang, Wei-Xian 0000-0002-8475-3143 (Corresponding author) [1] Zhu, Guangjun [1] Xia, Huan [1] Zhang, Hanning 0000-0001-9103-8431 [1] Xie, Qian [1] Jin, Peng [2] Zhang, Haoyu [1] Yi, Chengjie [1] Zhang, Ruqian [1] Ji, Lingfeng [1] Shui, Tao 0000-0003-0394-232X [1] Moloto, Nosipho 0000-0002-3976-6674 [3] She, Wei 0000-0002-6959-1625 (Corresponding author) [1] Sun, Zheng Ming 0000-0001-9798-9385 (Corresponding author) [1]

Affiliations

  1. [1] Southeast University
  2. [NORA names: China; Asia, East];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  5. [3] University of the Witwatersrand
  6. [NORA names: South Africa; Africa]

Abstract

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/MnO2 ionic battery into the Prussian blue (PB)-based electrochromic system. Zn and MnO2 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/MnO2 electrodes. The as-prepared Zn||PB||MnO2 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||MnO2 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.

Keywords

MnO, Pb electrode, Prussian white, White, Zn, Zn/Pb, anode, battery, bleaching/coloring process, cathode, closed nature, coloring/bleaching, coloring/bleaching process, configuration, continuous replenishment, contrast, cycle, design, devices, dual-function, electrochemical devices, electrochemically, electrochromic cycles, electrochromic devices, electrochromic performance, electrochromic system, electrode, electron, energy, energy storage system, excellent optical contrast, fabrication, fast switching speed, fasting, flexible electrochromic devices, gradient, gradient potential, initial state, integration, ionic batteries, nature, open systems design, optical contrast, oxidation, performance, potential, process, replenishment, speed, state, storage system, strong oxidants, superior electrochromic performance, switching speed, system, system design, wearable, wearable electronics

Funders

  • Aviation Industry Corporation of China (China)
  • National Natural Science Foundation of China
  • Ministry of Science and Technology of the People's Republic of China

Data Provider: Digital Science