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Optimization of multi-grating volume holographic spectrum splitters for photovoltaic applications

机译:用于光伏应用的多光栅批量全息光谱分离器的优化

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摘要

Recent research has shown that using multiple diverse-bandgap photovoltaic (PV) cells in conjunction with a spectrum splitting optical system can significantly improve PV power generation efficiency. Although volume Bragg gratings (VBGs) can serve as effective spectrum splitters, the inherent dispersion of a VBG can be detrimental given a broad-spectrum input. The performance of a single holographic spectrum splitter element can be improved by utilizing multiple single volume gratings, each operating in a slightly different spectral band. However, care must be taken to avoid inter-grating coupling effects that limit the ultimate performance. This work explores broadband two-grating holographic optical elements (HOEs) in multiplexed (single element) and sandwiched-grating arrangements. Particle swarm optimization is used to tailor these systems to the solar spectrum, taking into account both efficiency and dispersion. Both multiplexed and sandwiched two-grating systems exhibit performance improvements over single-grating solutions, especially when reduced dispersion is required. Under a +/- 2 degrees constraint on output angular spread from wavelength dispersion, sandwiched-, multiplexed-, and single-grating systems exhibit power conversion efficiencies of 82.1%, 80.9%, and 77.5%, respectively, compared to an ideal bandpass spectrum splitter. Dispersion performance can be further improved by employing more than two VBGs in the spectrum splitter, but efficiency is compromised by additional cross-coupling effects. Multiplexed-grating systems are especially susceptible to these effects, but have the advantage of utilizing only a single HOE. (C) 2016 Optical Society of America
机译:最近的研究表明,使用多种多样化带隙光伏(PV)电池与光谱分裂光学系统一起可以显着提高光伏发电效率。虽然卷Bragg光栅(VBG)可以用作有效的频谱分离器,但是VBG的固有色散可能是有害的,但是给出了广谱输入。通过利用多个单个体积光栅可以改善单个全息谱分离器元件的性能,每个谱带在略微不同的光谱带中操作。但是,必须注意避免限制最终性能的互光器耦合效应。这项工作探讨了多路复用(单元素)和夹层光栅布置中的宽带两光栅全息光学元件(锄头)。考虑到效率和分散,粒子群优化用于将这些系统量身定制到太阳频谱。多路复用和夹层的双光栅系统都表现出对单光栅溶液的性能改进,特别是在需要降低的分散时。与波长分散的输出角度的+/- 2度约束下,与理想的带通频谱相比,夹层,多路复用 - 和单光栅系统分别表现出82.1%,80.9%和77.5%的功率转换效率分离器。通过在频谱分离器中采用超过两个VBG,可以进一步提高色散性能,但是通过额外的交叉耦合效果损害效率。多路复用光栅系统特别容易受这些影响,但具有仅利用单个锄头的优点。 (c)2016年美国光学学会

著录项

  • 来源
    《Applied optics》 |2016年第20期|共9页
  • 作者

    Ingersoll G. B.; Leger J. R.;

  • 作者单位

    Univ Minnesota Dept Elect &

    Comp Engn 200 Union St SE Minneapolis MN 55455 USA;

    Univ Minnesota Dept Elect &

    Comp Engn 200 Union St SE Minneapolis MN 55455 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
  • 关键词

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