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具有哈克品质因数>600×10⁻³ Ω的Ag-Cu核壳纳米线透明电极的全大气制备。

All-atmospheric fabrication of Ag-Cu core-shell nanowire transparent electrodes with Haacke figure of merit >600 × 10 Ω.

作者信息

DiGregorio Steven J, Miller Collin E, Prince Kevin J, Hildreth Owen J, Wheeler Lance M

机构信息

National Renewable Energy Laboratory, Golden, CO, 80401, USA.

Colorado School of Mines, Golden, CO, 80401, USA.

出版信息

Sci Rep. 2022 Dec 5;12(1):20962. doi: 10.1038/s41598-022-25080-x.

Abstract

Transparent conducting electrodes (TCEs) are essential components in devices such as touch screens, smart windows, and photovoltaics. Metal nanowire networks are promising next-generation TCEs, but best-performing examples rely on expensive metal catalysts (palladium or platinum), vacuum processing, or transfer processes that cannot be scaled. This work demonstrates a metal nanowire TCE fabrication process that focuses on high performance and simple fabrication. Here we combined direct and plating metallization processes on electrospun nanowires. We first directly metallize silver nanowires using reactive silver ink. The silver catalyzes subsequent copper plating to produce Ag-Cu core-shell nanowires and eliminates nanowire junction resistances. The process allows for tunable transmission and sheet resistance properties by adjusting electrospinning and plating time. We demonstrate state-of-the-art, low-haze TCEs using an all-atmospheric process with sheet resistances of 0.33 Ω sq and visible light transmittances of 86% (including the substrate), leading to a Haacke figure of merit of 652 × 10 Ω. The core-shell nanowire electrode also demonstrates high chemical and bending durability.

摘要

透明导电电极(TCEs)是触摸屏、智能窗和光伏等设备中的关键组件。金属纳米线网络是很有前景的下一代TCEs,但性能最佳的实例依赖于昂贵的金属催化剂(钯或铂)、真空处理或无法规模化的转移工艺。这项工作展示了一种专注于高性能和简单制造的金属纳米线TCE制造工艺。在此,我们将直接金属化和电镀金属化工艺应用于电纺纳米线上。我们首先使用活性银油墨直接对银纳米线进行金属化处理。银催化随后的铜电镀,以生产Ag-Cu核壳纳米线,并消除纳米线结电阻。通过调整电纺和电镀时间,该工艺可实现可调的透射率和薄层电阻特性。我们使用全常压工艺展示了具有0.33Ω/sq的薄层电阻和86%(包括基板)的可见光透射率的先进低雾度TCEs,从而得到652×10Ω的哈克品质因数。核壳纳米线电极还表现出高化学稳定性和弯曲耐久性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b0f/9722900/621e1e583ffc/41598_2022_25080_Fig1_HTML.jpg

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