Kik Pieter G
Opt Lett. 2014 Sep 1;39(17):5114-7. doi: 10.1364/OL.39.005114.
An optical electrode design is presented that theoretically allows 100% optical transmission through an interdigitated metallic electrode at 50% metal areal coverage. This is achieved by redirection of light incident on embedded metal electrode lines to an angle beyond that required for total internal reflection. Full-field electromagnetic simulations using realistic material parameters demonstrate 84% frequency-averaged transmission for unpolarized illumination across the entire visible spectral range using a silver interdigitated electrode at 50% areal coverage. The redirection is achieved through specular reflection, making it nonresonant and arbitrarily broadband, provided the electrode width exceeds the optical wavelength. These findings could significantly improve the performance of photovoltaic devices and optical detectors that require high-conductivity top contacts.
本文提出了一种光学电极设计,理论上在金属面积覆盖率为50%时可实现100%的光透过叉指式金属电极。这是通过将入射到嵌入式金属电极线上的光重定向到超过全内反射所需角度来实现的。使用实际材料参数进行的全场电磁模拟表明,对于50%面积覆盖率的银叉指电极,在整个可见光谱范围内,非偏振照明的频率平均透过率为84%。这种重定向是通过镜面反射实现的,只要电极宽度超过光波长,就使其非共振且具有任意宽带特性。这些发现可显著提高需要高导电性顶部接触的光伏器件和光学探测器的性能。