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Visible-IR transmission enhancement through fog using circularly polarized light

机译:使用圆偏振光通过雾化的可见IR传输增强

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摘要

Detection range is an important factor affecting the transmission characteristics of polarized light through fog. We first selected certain spectral bands from visible to IR wavelengths that exhibit lower path loss. For both radiation fog and advection fog, these optimized wavelength ranges include 0.4-1.1 mu m, 1.48-1.56 mu m, 1.63-1.86 mu m, 2.03-2.18 mu m, and 2.39-2.45 mu m, and radiation fog in particular contains 3.5-4.3 mu m The long-wave IR wavelengths were excluded due to higher absorption losses. We further investigated the transmission performance of circular and linear polarization in variable foggy environments, exploring the impact of the detection range in particular. Using polarization-tracking Monte Carlo simulations for varying particle size, wavelength, refractive index, and detection range, we show that circular polarization outperforms linear polarization when transmitting in both radiation and advection fog. For radiation fog, circular polarization persists longer than linear polarization for 5 mu m and 9 mu m particles over the entire optimized wavelength range from the visible to mid-wave IR (MWIR). However, linear polarization outperforms circular polarization for 1 mu m partides over the entire MWIR and a part of the short-wave IR (SWIR). For advection fog, circular polarization persists longer than linear polarization for all three partide sizes (10, 20, and 40 mu m) over the entire optimized wavelength range from the visible to SWIR. We show that circular polarization retains a higher degree of polarization and has better enhancement in some detection ranges. (C) 2018 Optical Society of America
机译:检测范围是影响偏振光通过雾的传输特性的重要因素。我们首先选择具有表现出降低路径损耗的IR波长的某些光谱带。对于辐射雾和平流雾,这些优化的波长范围包括0.4-1.1μm,1.48-1.56μm,1.63-1.86 mu m,2.03-2.18 mu m和2.39-2.45 mu m,特别是辐射雾3.5-4.3μm由于吸收损失较高,不包括长波IR波长。我们进一步研究了可变雾环境中圆形和线性极化的传输性能,特别是探索了检测范围的影响。使用偏振跟踪Monte Carlo模拟用于不同的粒度,波长,折射率和检测范围,我们表明在辐射和平流雾中传输时圆极化优于线性极化。对于辐射雾,圆偏振持续性比线性偏振长于5μm和9μm颗粒,在整个优化波长范围内,来自中波IR(MWIR)。然而,线性偏振优于1μm偏离整个MWIR的圆极化和短波IR(SWIR)的一部分。对于平行雾,循环极化持续,对于所有三个伴随尺寸(10,20,和40μm)的线性极化,在从可见的波长范围内的整个优化波长范围内的所有三个辅助尺寸(10,20和40μm)。我们表明圆形偏振度保留了更高程度的极化,并在一些检测范围内具有更好的增强。 (c)2018年光学学会

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  • 来源
    《Applied optics》 |2018年第23期|共6页
  • 作者单位

    Dalian Univ Technol Coll Mech Engn Dalian 116024 Peoples R China;

    Dalian Univ Technol Coll Mech Engn Dalian 116024 Peoples R China;

    Dalian Univ Technol Coll Mech Engn Dalian 116024 Peoples R China;

    Dalian Univ Technol Coll Mech Engn Dalian 116024 Peoples R China;

    Dalian Univ Technol Coll Mech Engn Dalian 116024 Peoples R China;

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