纳米天线支持的中波红外探测

D. Peters, D. Leonhardt, C. Reinke, Jin K. Kim, J. Wendt, P. Davids, J. Klem
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引用次数: 2

摘要

我们展示了在光电探测器活性材料附近集成纳米天线的模拟结果。纳米天线允许更薄的有源层用于相同数量的入射光吸收。这是通过纳米天线将入射辐射耦合到与金属表面结合的表面等离子体模式来实现的。这些模式紧密结合,只需要一层薄薄的活性材料就可以完全吸收。此外,纳米天线的阻抗使入射辐射与表面波相匹配,而不需要抗反射涂层。虽然纳米天线概念可以应用于任何有源光电探测器材料,但我们选择将纳米天线与InAsSb光电二极管集成在一起。在光电二极管中加入纳米天线,除了简单地增加纳米天线和减薄有源层外,还需要改变堆叠的几何形状。我们将展示纳米天线和有源区的电场模拟和优化设计,以最大化有源层的吸收,而不是纳米天线金属中的吸收。我们将回顾制造过程。
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Nanoantenna-enabled midwave infrared detection
We show simulation results of the integration of a nanoantenna in close proximity to the active material of a photodetector. The nanoantenna allows a much thinner active layer to be used for the same amount of incident light absorption. This is accomplished through the nanoantenna coupling incoming radiation to surface plasmon modes bound to the metal surface. These modes are tightly bound and only require a thin layer of active material to allow complete absorption. Moreover, the nanoantenna impedance matches the incoming radiation to the surface waves without the need for an antireflection coating. While the nanoantenna concept may be applied to any active photodetector material, we chose to integrate the nanoantenna with an InAsSb photodiode. The addition of the nanoantenna to the photodiode requires changes to the geometry of the stack beyond the simple addition of the nanoantenna and thinning the active layer. We will show simulations of the electric fields in the nanoantenna and the active region and optimized designs to maximize absorption in the active layer as opposed to absorption in the metal of the nanoantenna. We will review the fabrication processes.
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