IEK5 - Photovoltaik, Forschungszentrum Jülich GmbH, 52425 Jülich, Germany.
Nano Lett. 2014 Nov 12;14(11):6599-605. doi: 10.1021/nl503249n. Epub 2014 Nov 3.
Nanophotonic light management concepts are on the way to advance photovoltaic technologies and accelerate their economical breakthrough. Most of these concepts make use of the coupling of incident sunlight to waveguide modes via nanophotonic structures such as photonic crystals, nanowires, or plasmonic gratings. Experimentally, light coupling to these modes was so far exclusively investigated with indirect and macroscopic methods, and thus, the nanoscale physics of light coupling and propagation of waveguide modes remain vague. In this contribution, we present a nanoscopic observation of light coupling to waveguide modes in a nanophotonic thin-film silicon solar cell. Making use of the subwavelength resolution of the scanning near-field optical microscopy, we resolve the electric field intensities of a propagating waveguide mode at the surface of a state-of-the-art nanophotonic thin-film solar cell. We identify the resonance condition for light coupling to this individual waveguide mode and associate it to a pronounced resonance in the external quantum efficiency that is found to increase significantly the power conversion efficiency of the device. We show that a maximum of the incident light couples to the investigated waveguide mode if the period of the electric field intensity of the waveguide mode matches the periodicity of the nanophotonic two-dimensional grating. Our novel experimental approach establishes experimental access to the local analysis of light coupling to waveguide modes in a number of optoelectronic devices concerned with nanophotonic light-trapping as well as nanophotonic light emission.
纳米光子学的光管理概念正在推动光伏技术的发展,并加速其经济突破。这些概念中的大多数都利用纳米光子结构(如光子晶体、纳米线或等离子体光栅)将入射阳光耦合到波导模式中。在实验中,到目前为止,这些模式的光耦合仅通过间接和宏观方法进行了研究,因此,波导模式的光耦合和传播的纳米级物理仍不清楚。在本贡献中,我们展示了对纳米光子学薄膜硅太阳能电池中波导模式的光耦合的纳米级观察。利用扫描近场光学显微镜的亚波长分辨率,我们解析了在最先进的纳米光子学薄膜太阳能电池表面传播的波导模式的电场强度。我们确定了将光耦合到该单个波导模式的共振条件,并将其与外部量子效率中的明显共振相关联,发现该共振明显提高了器件的功率转换效率。我们表明,如果波导模式的电场强度的周期性与二维纳米光子光栅的周期性相匹配,则入射光最多可以耦合到所研究的波导模式。我们的新实验方法为研究与纳米光子学光捕获以及纳米光子学光发射相关的多种光电设备中波导模式的光耦合的局部分析提供了实验途径。