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用于超透明电极的银纳米线网络中棒状取向对电各向异性的影响。

The effect of rod orientation on electrical anisotropy in silver nanowire networks for ultra-transparent electrodes.

作者信息

Ackermann Thomas, Neuhaus Raphael, Roth Siegmar

机构信息

Graduate School of Excellence in Advanced Manufacturing Engineering, University of Stuttgart, Nobelstr. 12, 70569 Stuttgart, Germany.

Fraunhofer Institute for Manufacturing Engineering and Automation, Nobelstr. 12, 70569 Stuttgart, Germany.

出版信息

Sci Rep. 2016 Sep 28;6:34289. doi: 10.1038/srep34289.

Abstract

Two-dimensional networks made of metal nanowires are excellent paradigms for the experimental observation of electrical percolation caused by continuous jackstraw-like physical pathways. Such systems became very interesting as alternative material in transparent electrodes, which are fundamental components in display devices. This work presents the experimental characterization of low-haze and ultra-transparent electrodes based on silver nanowires. The films are created by dip-coating, a feasible and scalable liquid film coating technique. We have found dominant alignment of the silver nanowires in withdrawal direction. The impact of this structural anisotropy on electrical anisotropy becomes more pronounced for low area coverage. The rod alignment does not influence the technical usability of the films as significant electrical anisotropy occurs only at optical transmission higher than 99 %. For films with lower transmission, electrical anisotropy becomes negligible. In addition to the experimental work, we have carried out computational studies in order to explain our findings further and compare them to our experiments and previous literature. This paper presents the first experimental observation of electrical anisotropy in two-dimensional silver nanowire networks close at the percolation threshold.

摘要

由金属纳米线制成的二维网络是通过连续的稻草状物理路径引发电渗流的实验观察的优秀范例。这类系统作为透明电极的替代材料变得非常有趣,而透明电极是显示设备的基本组件。这项工作展示了基于银纳米线的低雾度和超透明电极的实验特性。这些薄膜通过浸涂法制备,浸涂是一种可行且可扩展的液膜涂覆技术。我们发现银纳米线在拉伸方向上呈现主导排列。对于低面积覆盖率,这种结构各向异性对电各向异性的影响变得更加明显。棒状排列并不影响薄膜的技术可用性,因为显著的电各向异性仅在光透射率高于99%时才会出现。对于透射率较低的薄膜,电各向异性可以忽略不计。除了实验工作,我们还进行了计算研究,以便进一步解释我们的发现,并将其与我们的实验以及先前的文献进行比较。本文首次对接近渗流阈值的二维银纳米线网络中的电各向异性进行了实验观察。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec42/5039631/9f9b9e251659/srep34289-f1.jpg

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