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大面积纳米线共组装用于柔性透明智能窗。

Large Area Co-Assembly of Nanowires for Flexible Transparent Smart Windows.

机构信息

Division of Nanomaterials & Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Suzhou Nano Science and Technology, Department of Chemistry, CAS Centre for Excellence in Nanoscience, Hefei Science Centre of CAS, University of Science and Technology of China , Hefei 230026, China.

出版信息

J Am Chem Soc. 2017 Jul 26;139(29):9921-9926. doi: 10.1021/jacs.7b03227. Epub 2017 Jul 18.

Abstract

Electrochromic devices with controllable color switching, low cost, and energy-saving advantages have been widely used as smart windows, rear-view car mirrors, displays, and so on. However, the devices are seriously limited for flexible electronics as they are traditionally fabricated on indium tin oxide (ITO) substrates which will lose their conductivity after bending cycles (the resistance significantly changed from 200 Ω to 6.56 MΩ when the bending radius was 1.2 cm). Herein, we report a new route for large area coassembly of nanowires (NWs), resulting in the formation of multilayer ordered nanowire (NW) networks with tunable conductivity (7-40 Ω/sq) and transmittance (58-86% at 550 nm) for fabrication of flexible transparent electrochromic devices, showing good stability of electrochromic switching behaviors. The electrochromic performance of the devices can be tuned and is strongly dependent on the structures of the Ag and WO NW assemblies. Unlike the ITO-based electronics, the electrochromic films can be bent to a radius of 1.2 cm for more than 1000 bending cycles without obvious failure of both conductivity (ΔR/R ≈ 8.3%) and electrochromic performance (90% retention), indicating the excellent mechanical flexibility. The present method for large area coassembly of NWs can be extended to fabricate various NW-based flexible devices in the future.

摘要

具有可控颜色切换、低成本和节能优势的电致变色器件已被广泛用作智能窗户、汽车后视镜、显示器等。然而,由于传统上是在铟锡氧化物(ITO)衬底上制造的,这些器件在经过弯曲循环后会失去导电性(当弯曲半径为 1.2 厘米时,电阻从 200 Ω显著变化到 6.56 MΩ),因此它们严重限制了柔性电子产品的应用。在此,我们报告了一种用于大面积共组装纳米线(NW)的新途径,从而形成了具有可调导电性(7-40 Ω/sq)和透光率(550nm 时为 58-86%)的多层有序纳米线(NW)网络,可用于制造柔性透明电致变色器件,显示出良好的电致变色开关行为稳定性。器件的电致变色性能可以进行调节,并且强烈依赖于 Ag 和 WO NW 组件的结构。与基于 ITO 的电子器件不同,电致变色薄膜可以弯曲到 1.2 厘米的半径,超过 1000 次弯曲循环而不会明显失效,导电性(ΔR/R ≈ 8.3%)和电致变色性能(保持率 90%),表明其具有出色的机械灵活性。未来,大面积共组装 NW 的这种方法可以扩展到制造各种基于 NW 的柔性器件。

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