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Uncooled infrared imaging device based on optimized optomechanical micro-cantilever array

机译:基于优化的光机械微悬臂阵列的非制冷红外成像装置

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摘要

It is a major issue to improve the thermo-mechanical sensitivity of uncooled optomechanical focal plane arrays (FPAs) for infrared imaging. This work presents an optimized multi-fold interval metallized leg (IML) configuration to increase the thermo-mechanical sensitivity of an uncooled optomechanical bi-material micro-cantilever array. The inclination angle changes of the cantilever elements are measured in the IR imaging system using an optical readout with a knife-edge filtering operation in the spectrum plane. The multi-fold IML configuration consists of alternately connected unmetallized and metallized legs. With the optimized fold number, the thermo-mechanical sensitivity of a micro-cantilever array can be amplified to two times of one-fold IML for a 120 mu m X 120mu m element with 1 mu m thick SiN_x/0.2 mu m thick Au films. Room temperature objects are imaged with the fabricated FPA containing 160 X 160 elements and a 12-bit CCD. Further modeling analysis shows that the experimental results are well accordant with the theoretical calculation. An important practical feature of the implemented approach is its straightforward fabrication for a large FPA, without growing complexity and cost.
机译:改进未冷却的光机械焦平面阵列(FPA)的红外成像的热机械灵敏度是一个主要问题。这项工作提出了一种优化的多重间隔金属化支腿(IML)配置,以提高未冷却的光机械双材料微悬臂梁阵列的热机械灵敏度。悬臂元件的倾斜角变化是在IR成像系统中使用光学读数在光谱平面中使用刀口滤波操作进行测量的。多重IML配置由交替连接的未金属化和金属化支脚组成。通过优化的折叠数,对于具有1μm厚SiN_x / 0.2μm厚Au膜的120μmX120μm元件,微悬臂阵列的热机械灵敏度可以放大到两倍IML。 。使用包含160 X 160元素和12位CCD的人造FPA对室温物体成像。进一步的建模分析表明,实验结果与理论计算吻合良好。实施方法的一个重要的实用特性是它可以直接用于大型FPA,而不会增加复杂性和成本。

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