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Numerical Simulation of Refractive-Microlensed HgCdTe Infrared Focal Plane Arrays Operating in Optical Systems

机译:光学系统中折射微透镜HgCdTe红外焦平面阵列的数值模拟

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The optoelectronic performance of the mid-wavelength HgCdTe infrared focal plane array (IRFPA) with refractive microlenses integrated on its CdZnTe substrate has been numerically simulated. A reduced light-distribution model based on scalar Kirchhoff diffraction theory was adopted to reveal the true behavior of IRFPAs operating in an optical system under imaging conditions. The pixel crosstalk obtained and the energy-gathering characteristics demonstrated that the microlenses can delay the rise in crosstalk when the image point shifts toward pixel boundaries, and can restrict the major optical absorption process in any case within a narrow region around the pixel center. The dependence of the microlenses' effects on the system's properties was also analyzed; this showed that intermediate relative aperture and small microlens radius are required for optimized device performance. Simulation results also indicated that for detectors farther from the center of the field of view, the efficacy of microlenses in crosstalk suppression and energy gathering is still maintained, except for a negligible difference in the lateral magnification from an ordinary array without microlenses.
机译:通过数值模拟了在CdZnTe衬底上集成了折射微透镜的中波长HgCdTe红外焦平面阵列(IRFPA)的光电性能。采用基于标量基尔霍夫衍射理论的简化光分布模型,揭示了在成像条件下在光学系统中运行的IRFPA的真实行为。所获得的像素串扰和能量聚集特性表明,当像点移向像素边界时,微透镜可以延迟串扰的上升,并且在任何情况下都可以将主要的光吸收过程限制在像素中心周围的狭窄区域内。还分析了微透镜对系统特性的影响。这表明,要获得最佳的器件性能,就需要中间相对孔径和较小的微透镜半径。仿真结果还表明,对于远离视场中心的检测器,微透镜在串扰抑制和能量收集方面的功效仍然得以维持,除了横向放大倍数与不带微透镜的普通阵列相比可忽略不计。

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