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用于半导体器件的透明金属分形电极。

Transparent metallic fractal electrodes for semiconductor devices.

机构信息

Geballe Laboratory for Advanced Materials , 476 Lomita Mall, Stanford, California 94305-4045, United States.

出版信息

Nano Lett. 2014 Sep 10;14(9):5068-74. doi: 10.1021/nl501738b. Epub 2014 Aug 28.

Abstract

Nanostructured metallic films have the potential to replace metal oxide films as transparent electrodes in optoelectronic devices. An ideal transparent electrode should possess a high, broadband, and polarization-independent transmittance. Conventional metallic gratings and grids with wavelength-scale periodicities, however, do not have all of these qualities. Furthermore, the transmission properties of a nanostructured electrode need to be assessed in the actual dielectric environment provided by a device, where a high-index semiconductor layer can reflect a substantial fraction of the incident light. Here we propose nanostructured aluminum electrodes with space-filling fractal geometries as alternatives to gratings and grids and experimentally demonstrate their superior optoelectronic performance through integration with Si photodetectors. As shown by polarization and spectrally resolved photocurrent measurements, devices with fractal electrodes exhibit both a broadband transmission and a flat polarization response that outperforms both square grids and linear gratings. Finally, we show the benefits of adding a thin silicon nitride film to the nanostructured electrodes to further reduce reflection.

摘要

纳米结构金属薄膜有望替代金属氧化物薄膜,成为光电设备中的透明电极。理想的透明电极应具有高、宽频带和偏振无关的透过率。然而,传统的具有波长级周期性的金属光栅和网格并不具备所有这些特性。此外,还需要在器件提供的实际介电环境中评估纳米结构电极的传输特性,其中高折射率半导体层会反射相当一部分入射光。在这里,我们提出了具有空间填充分形结构的纳米结构铝电极作为光栅和网格的替代品,并通过与 Si 光电探测器集成,实验证明了它们优异的光电性能。如偏振和光谱分辨光电流测量所示,具有分形电极的器件表现出宽带传输和平坦的偏振响应,优于方形网格和线性光栅。最后,我们展示了在纳米结构电极上添加薄氮化硅薄膜的好处,以进一步减少反射。

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