Design and simulation of anti-reflecting nanostructure for visible shortwave infrared focal plane array detectors

X. Yu, Yizhen Yu, X. Shao, Yu Tian, Chunlei Yu, H. Gong
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Abstract

InGaAs/InP Focal Plane Array (FPA) photodetector, which responses from 400nm-1700nm, is widely used in many applications, while its quantum efficiency in visible spectrum is commonly lower than Shortwave Infrared (SWIR) spectrum. In order to improve the quantum efficiency in visible spectrum, new methods need to be applied. Based on Mie scattering, sub-wavelength nanostructure arrays have been demonstrated that can be used as anti-reflecting mechanism in visible spectrum. Here we present the design and simulation of the parameters of nanostructure arrays, which aims at suppressing the reflection in visible spectrum, thus the transmittance of visible light from the back-illuminated side gets improved. Simulation results prove that designed nanostructure arrays can decrease the reflectance in visible spectrum, and integrating designed nanostructure arrays on ultra-thin back-illuminated layer can improve the transmittance, which improves the quantum efficiency of photodetector.
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可见光短波红外焦平面阵列探测器抗反射纳米结构的设计与仿真
InGaAs/InP焦平面阵列(FPA)光电探测器的响应范围为400nm-1700nm,其在可见光谱中的量子效率普遍低于短波红外(SWIR)光谱。为了提高可见光谱的量子效率,需要采用新的方法。基于米氏散射,亚波长纳米结构阵列已被证明可以作为可见光谱的增透机制。本文设计和仿真了纳米结构阵列的参数,旨在抑制可见光光谱的反射,从而提高背照侧可见光的透射率。仿真结果表明,设计的纳米结构阵列可以降低可见光光谱的反射率,并且将设计的纳米结构阵列集成在超薄背照层上可以提高透射率,从而提高光电探测器的量子效率。
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