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Characterization of plasmonic hole arrays as transparent electrical contacts for organic photovoltaics using high-brightness Fourier transform methods

机译:使用高亮度傅立叶变换法将等离激元孔阵列表征为有机光伏的透明电触点

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摘要

We present a methodology for probing light-matter interactions in prototype photovoltaic devices consisting of an organic semiconductor active layer with a semitransparent metal electrical contact exhibiting surface plasmon-based enhanced optical transmission. We achieve high-spectral irradiance in a spot size of less than 100m using a high-brightness laser-driven light source and appropriate coupling optics. Spatially resolved Fourier transform photocurrent spectroscopy in the visible and near-infrared spectral regions allows us to measure external quantum efficiency with high sensitivity in small-area devices (<1mm(2)). This allows for rapid fabrication of variable-pitch sub-wavelength hole arrays in metal films for use as transparent electrical contacts, and evaluation of the evanescent and propagating mode coupling to resonances in the active layer.
机译:我们提出了一种在原型光伏设备中探测光与物质相互作用的方法,该光伏设备由具有半透明金属电接触的有机半导体活性层组成,这些半导电金属接触层显示出基于表面等离激元的增强型光传输。我们使用高亮度激光驱动光源和适当的耦合光学器件,在小于100m的光斑尺寸内实现了高光谱辐照度。在可见光和近红外光谱区域中的空间分辨傅立叶变换光电流光谱技术使我们能够在小面积设备(<1mm(2))中以高灵敏度测量外部量子效率。这允许在用作透明电触点的金属膜中快速制造可变节距亚波长孔阵列,并评估与有源层中的共振耦合的渐逝和传播模式。

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