4.8 Article

Self-Driven Electrochromic Window System Cu/WOx-Al3+/GR with Dynamic Optical Modulation and Static Graph Display Functions

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 14, Issue 8, Pages 10517-10525

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c22392

Keywords

electrochromic WOx; Al ion; Cu electrode; self-driven system; bifunction

Funding

  1. National Natural Science Foundation of China [51507104, 62071307]
  2. China Postdoctoral Science Foundation [2019M663056]
  3. Electron Microscope Center of the Shenzhen University

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This study presents a self-driven AI-ion electrochromic system that achieves dynamic optical modulation and static graph display through electrode switching, demonstrating high color stability and wide potential window. It holds significant value for electrochromic applications.
Electrochromic devices with unique advantages of electrical/optical bistability are highly desired for energy-saving and information storage applications. Here, we put forward a self-driven AI-ion electrochromic system, which utilizes WOx films, Cu foil, and graphite rod as electrochromic optical modulation and graph display electrodes, coloration potential supplying electrodes, and bleaching potential supplying electrodes, respectively. The inactive Cu electrode can not only realize the effective Al3+ cation intercalation into electrochromic WOx electrodes but also eliminate the problem of metal anode consumption. The electrochromic WOx electrodes cycled in Al3+ aqueous media exhibit a wide potential window (similar to 1.5 V), high coloration efficiency (36.0 cm(2)/C), and super-long-term cycle stability (>2000 cycles). The dynamic optical modulation and static graph display function can be achieved independently only by switching the electrode connection mode, thus bringing more features to this electrochromic system. For a large-area electrochromic system (10 x 10 cm(2)), the absolute transmittance value in its color-neutral state can reach about 41% (27%) at 633 nm (780 nm) by connecting the Cu and WOx electrodes for 140 s. The original transparent state can be readily recovered by replacing the Cu foil with the graphite rod. This work throws light on next-generation electrochromic applications for optical/thermal modulation, privacy protection, and information display.

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