Li Haizeng, Zhang Wu, Elezzabi Abdulhakem Y
Ultrafast Optics and Nanophotonics Laboratory, Department of Electrical and Computer Engineering, University of Alberta, Edmonton, Alberta, T6G 2V4, Canada.
Adv Mater. 2020 Oct;32(43):e2003574. doi: 10.1002/adma.202003574. Epub 2020 Sep 21.
Newly born zinc-anode-based electrochromic devices (ZECDs), incorporating electrochromic and energy storage functions in a single transparent platform, represent the most promising technology for next-generation transparent electronics. As the existing ZECDs are limited by opaque zinc anodes, the key focus should be on the development of transparent zinc anodes. Here, the first demonstration of a flexible transparent zinc-mesh electrode is reported for a ZECD window that yields a remarkable electrochromic performance in an 80 cm device, including rapid switching times (3.6 and 2.5 s for the coloration and bleaching processes, respectively), a high optical contrast (67.2%), and an excellent coloration efficiency (131.5 cm C ). It is also demonstrated that such ZECDs are perfectly suited for solar-charging smart windows as they inherently address the solar intermittency issue. These windows can be colored via solar charging during the day, and they can be bleached during the night by supplying electrical energy to electronic devices. The ZECD smart window platform can be scaled to a large area while retaining its excellent electrochromic characteristics. These findings represent a new technology for solar-charging windows and open new opportunities for the development of next-generation transparent batteries.
新诞生的基于锌阳极的电致变色器件(ZECD)在单个透明平台中集成了电致变色和能量存储功能,是下一代透明电子学最具前景的技术。由于现有的ZECD受到不透明锌阳极的限制,关键重点应放在透明锌阳极的开发上。在此,报道了一种用于ZECD窗口的柔性透明锌网电极的首次展示,该电极在80厘米的器件中展现出卓越的电致变色性能,包括快速的切换时间(着色和漂白过程分别为3.6秒和2.5秒)、高光学对比度(67.2%)以及出色的着色效率(131.5平方厘米每库仑)。还证明了此类ZECD非常适合太阳能充电智能窗,因为它们从本质上解决了太阳能间歇性问题。这些窗户在白天可通过太阳能充电进行着色,在夜间通过向电子设备供电进行漂白。ZECD智能窗平台可以扩展到大面积,同时保持其优异的电致变色特性。这些发现代表了一种用于太阳能充电窗的新技术,并为下一代透明电池的开发开辟了新机遇。