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Characterization of tunable longwave infrared filters using quantum cascade lasers

机译:使用量子级联激光器表征可调谐长波红外滤光片

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We describe performance characterization of spectrally tunable nano-engineered filters operating in the longwave infrared (LWIR) from 8 to 12 micron using quantum cascade lasers (QCLs) tunable over the full spectral range. The filter design is based on using the guided mode resonance (GMR) phenomenon. The device structure consists of a subwavelength dielectric grating on top of a planar waveguide using high index dielectric transparent materials, i.e., germanium (Ge) with a refractive index of 4.0 and zinc selenide (ZnSe) with refractive index of 2.4. The filters are designed to reflect the incident broadband light at one (or more) narrow spectral band while fully transmitting the rest of the light. The tuning of the reflection wavelength is achieved by changing the angle of incidence of light by mechanically tilting the filter. Filters based on one dimensional (ID) gratings are polarization dependent and those based on two dimensional (2D) gratings are close to polarization independent. To design the filter with a strong narrow band reflectance, we used the rigorous coupled wave (RCW) algorithm to simulate the filter. Here we will describe design and characterization of prototype filters with ID grating. Anti-reflection coatings were applied to improve transmission over the entire spectral region. Our experimental setup consists of a QCL system operating at room temperature, nano-engineered filter and an uncooled broadband sensor. We will present the filter design, detailed characterization experiment and compare the theoretical and experimental results.
机译:我们描述了使用可调谐在整个光谱范围内的量子级联激光器(QCL)在8至12微米的长波红外(LWIR)中操作的可光谱调谐纳米工程滤波器的性能表征。滤波器的设计基于使用导模共振(GMR)现象。该器件结构由平面波导顶部的亚波长介质光栅构成,该光栅使用高折射率介质透明材料,即折射率为4.0的锗(Ge)和折射率为2.4的硒化锌(ZnSe)。滤光片被设计为在一个(或多个)窄光谱带反射入射的宽带光,同时完全透射其余的光。通过使滤光器机械倾斜来改变光的入射角,即可实现反射波长的调谐。基于一维(ID)光栅的滤波器与偏振有关,而基于二维(2D)光栅的滤波器与偏振无关。为了设计具有很强的窄带反射率的滤光片,我们使用了严格的耦合波(RCW)算法来模拟滤光片。在这里,我们将描述带有ID光栅的原型滤波器的设计和特性。施加了抗反射涂层,以改善整个光谱区域的透射率。我们的实验装置包括一个在室温下运行的QCL系统,纳米工程滤波器和一个未冷却的宽带传感器。我们将介绍滤波器的设计,详细的表征实验,并比较理论和实验结果。

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