Controlling spectral selectivity in optoelectronics via photonic band engineering in absorbing media

Botong Qiu, Yida Lin, Ebuka S. Arinze, Arlene Chiu, Lulin Li, S. Thon
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Abstract

The most common solution for achieving arbitrary spectral selectivity in optoelectronic devices is adding external filters. Here we propose using semiconductor thin film photonic crystals with relevant photonic bands that fall within the absorbing frequency range of the material for spectral selectivity. Optical simulations show that the in-plane photonic bands couple strongly to normal-incidence external fields, inducing tunable resonance features in the out-of-plane transmission and reflection spectra. Experimentally, we fabricate a proof-of-principle photonic structure with enhanced visible transparency, consisting of a self-assembled polystyrene bead array infiltrated with colloidal quantum dots, showing promise for multijunction and transparent photovoltaics.
利用吸收介质中的光子带工程控制光电子学中的光谱选择性
在光电器件中实现任意光谱选择性的最常见解决方案是添加外部滤波器。在这里,我们建议使用半导体薄膜光子晶体,其相关光子带落在材料的吸收频率范围内,用于光谱选择性。光学模拟表明,面内光子带与正入射外场强耦合,在面外透射和反射光谱中产生可调谐的共振特征。实验上,我们制造了一个具有增强可见透明度的原理证明光子结构,由自组装聚苯乙烯头阵列渗透胶体量子点组成,显示出多结和透明光伏的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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