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Upmost efficiency, few-micron-sized midwave infrared HgCdTe photodetectors

机译:最高效率,很少微米尺寸的中空红外HGCDTE光电探测器

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摘要

Resonant cavity-assisted enhancement of optical absorption was a photodetector designing concept emerging about two and half decades ago that responded to the challenge of thinning the photoactive layer while outperforming the efficiency of the monolithic photodetector. However, for many relevant materials, meeting that challenge with such a design unrealistically requires many layer deposition steps, so that the efficiency at goal hardly becomes attainable because of inevitable fabrication faults. Under this circumstance, we suggest a new approach for designing photodetectors with an absorber layer as thin as those in respective resonant cavity-enhanced ones, but concurrently, the overall detector thickness would be much thinner and top-performing. The proposed structures also contain the cavity-absorber arrangement but enclose the cavity by two dielectric one-dimensional grating-on-layer structures with the same grating pitch, instead of the distributed Bragg reflectors typical of the resonant cavity enhancement approach. By a design based on in-house software, the theoretical feasibility of such similar to 7.0-8.5 mu m thick structures with similar to 100% efficiency for a linearly polarized (TE or TM) mid-infrared range radiation is demonstrated. Moreover, the tolerances of the designed structures' performance against the gratings' fabrication errors are tested, and fair manufacturing tolerance while still maintaining high peak efficiency along with a small deviation of its spectral position off initially predefined central-design wavelength is proved. In addition, the electromagnetic fields amplitudes and Poynting vector over the cavity-absorber area are visualized. As a result, it is inferred that the electromagnetic fields' confinement in the designed structure, which is a key to their upmost efficiency, is two-dimensional, combining in-depth vertical resonant-cavity-like confinement with the lateral microcavity like one set by the presence of gratings. (C) 2019 Optical Society of America.
机译:谐振腔辅助增强光学吸收是一种光电探测器设计概念,其大约两年半是响应于稀疏光活性层的挑战,同时优于整体光电探测器的效率。然而,对于许多相关材料,满足这种设计的挑战不切实际地需要许多层沉积步骤,因此由于不可避免的制造故障,目标的效率几乎无法实现。在这种情况下,我们建议一种新方法来设计具有吸收层的光电探测器,与各个谐振腔增强型的吸收层一样薄,但同时,整体探测器厚度将更薄和顶部性能。所提出的结构还包含腔体吸收器装置,而是通过具有相同光栅间距的两个电介质一维光栅结构包围腔,而不是典型的谐振腔增强方法的分布式布拉格反射器。通过基于内部软件的设计,如图7.0-8.5μm厚结构相似的理论可行性,具有类似于线性偏振(TE或TM)中红外范围辐射的100%效率。此外,测试了设计结构对光栅的制造误差的性能的公差,并且已经证实了公平的制造公差,同时仍然保持高峰效率以及其频谱位置较小的较小偏差,最初预定义的中心设计波长。另外,腔吸收器区域上的电磁场幅度和Poynting载体被可视化。结果,推断电磁场在设计的结构中的限制,这是其最新效率的关键,是二维,与横向微腔相结合的深度垂直谐振腔类似的限制,如一组通过存在光栅。 (c)2019年光学学会。

著录项

  • 来源
    《Applied optics》 |2019年第22期|共9页
  • 作者单位

    Ben Gurion Univ Negev Dept Elect &

    Comp Engn POB 653 IL-84105 Beer Sheva Israel;

    Shamoon Coll Engn Dept Elect &

    Elect Engn POB 950 IL-84100 Beer Sheva Israel;

    Ben Gurion Univ Negev Dept Elect &

    Comp Engn POB 653 IL-84105 Beer Sheva Israel;

    Shamoon Coll Engn Dept Elect &

    Elect Engn POB 950 IL-84100 Beer Sheva Israel;

    Jerusalem Coll Technol Sch Elect Engn POB 16031 IL-91160 Jerusalem Israel;

    Ben Gurion Univ Negev Dept Elect &

    Comp Engn POB 653 IL-84105 Beer Sheva Israel;

    Ben Gurion Univ Negev Dept Elect &

    Comp Engn POB 653 IL-84105 Beer Sheva Israel;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
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