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透明导电银纳米线网络。

Transparent conducting silver nanowire networks.

机构信息

Center for Nanophotonics, FOM Institute AMOLF, Science Park 104, 1098 XG, Amsterdam, The Netherlands.

出版信息

Nano Lett. 2012 Jun 13;12(6):3138-44. doi: 10.1021/nl301045a. Epub 2012 May 8.

DOI:10.1021/nl301045a
PMID:22554260
Abstract

We present a transparent conducting electrode composed of a periodic two-dimensional network of silver nanowires. Networks of Ag nanowires are made with wire diameters of 45-110 nm and a pitch of 500, 700, and 1000 nm. Anomalous optical transmission is observed, with an averaged transmission up to 91% for the best transmitting network and sheet resistances as low as 6.5 Ω/sq for the best conducting network. Our most dilute networks show lower sheet resistance and higher optical transmittance than an 80 nm thick layer of ITO sputtered on glass. By comparing measurements and simulations, we identify four distinct physical phenomena that govern the transmission of light through the networks: all related to the excitation of localized surface plasmons and surface plasmon polaritons on the wires. The insights given in this paper provide the key guidelines for designing high-transmittance and low-resistance nanowire electrodes for optoelectronic devices, including thin-film solar cells. For the latter, we discuss the general design principles to use the nanowire electrodes also as a light trapping scheme.

摘要

我们提出了一种由周期性二维银纳米线网络组成的透明导电电极。Ag 纳米线网络的线径为 45-110nm,间距为 500、700 和 1000nm。观察到异常光传输,对于最佳传输网络,平均传输率高达 91%,对于最佳导电网络,方阻低至 6.5Ω/sq。我们最稀的网络显示出比溅射在玻璃上的 80nm 厚 ITO 层更低的方阻和更高的光透过率。通过比较测量和模拟,我们确定了四个控制光通过网络传输的不同物理现象:都与在导线上激发局域表面等离激元和表面等离激元有关。本文提供的见解为设计用于光电设备(包括薄膜太阳能电池)的高透过率和低电阻纳米线电极提供了关键指导原则。对于后者,我们讨论了将纳米线电极用作光捕获方案的一般设计原则。

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Nano Lett. 2012 Jun 13;12(6):3138-44. doi: 10.1021/nl301045a. Epub 2012 May 8.
2
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