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首页> 外文期刊>Solar Energy >Numerical analysis of the angular insensitive photovoltaic light harvesting with the biomimetic scattering film inspired by the rose petal epidermal topography
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Numerical analysis of the angular insensitive photovoltaic light harvesting with the biomimetic scattering film inspired by the rose petal epidermal topography

机译:玫瑰花瓣表皮形貌激发仿生散射膜收集角不敏感光伏光的数值分析

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摘要

Understanding the angular insensitive light harvesting principle is very important to the performance prediction and the optimal design of photovoltaic devices. A biomimetic scattering film was fabricated in our previous work by replicating rose petal epidermal topography with polydimethylsiloxane. It was experimentally proved that devices coated with this scattering film showed remarkable improvement in angular insensitive light harvesting. To further explore the principle behind it, a numerical analysis method was presented in this paper to evaluate the performance of photovoltaic devices with biomimetic scattering films. The parabolic cone array with disorder geometric parameters was used to approximate the real rose petal epidermal topography. Firstly, the optical properties of the bio-texture with geometrical disorders are investigated by means of ray tracing methods. Its light scattering ability, transmission and light trapping efficiency were quantified though a specific simulation model. Then, two types of photovoltaic devices were simulated, involving thick silicon films and thin film organic solar cells. It was concluded that the light harvesting was attributed to two aspects, the light trapping efficiency of the scattering film and the device absorption rate variation under scattering light illumination. By discussing these two factors separately, it turned out that the light trapping efficiency dominated the light harvesting for an absorber with low angular sensitivity like the thick silicon film; while for the one with high angular sensitivity such as organic solar cells, the two factors both made significant contributions. Furthermore, the angular insensitive light harvesting was mainly achieved by the stable light trapping efficiency under varied incident angles. At last, the simulation developed for thin film solar cells combined ray optics and wave optics. Thus, performance with different device structures can be optimized from the calculation. All the analysis methodology in this paper can give a guide on other types of bio-textures and various applications not limited to photovoltaics.
机译:了解角度不敏感的光收集原理对于光伏器件的性能预测和优化设计非常重要。在我们以前的工作中,通过用聚二甲基硅氧烷复制玫瑰花瓣的表皮形貌制作了仿生散射膜。实验证明,涂有该散射膜的器件在角度不敏感的光收集方面显示出显着的改进。为了进一步探究其背后的原理,本文提出了一种数值分析方法,以评估具有仿生散射膜的光伏器件的性能。具有无序几何参数的抛物线锥阵列用于近似真实的玫瑰花瓣表皮形貌。首先,通过射线追踪方法研究了具有几何缺陷的生物纹理的光学特性。通过特定的仿真模型对它的光散射能力,透射率和光捕获效率进行了定量。然后,模拟了两种类型的光电器件,包括厚硅膜和薄膜有机太阳能电池。得出的结论是,光的收集归因于两个方面,散射膜的光捕获效率和散射光照射下器件吸收率的变化。通过分别讨论这两个因素,结果表明,对于低角度敏感度的吸收体(如厚硅膜),光捕获效率主导了光收集效率。而对于具有高角度灵敏度的传感器(例如有机太阳能电池),这两个因素都做出了重大贡献。此外,角度不敏感的光收集主要是通过在变化的入射角下稳定的光捕获效率来实现的。最后,针对结合了射线光学和波动光学的薄膜太阳能电池进行了仿真。因此,可以根据计算优化具有不同器件结构的性能。本文中的所有分析方法都可以为其他类型的生物纹理以及不限于光伏的各种应用提供指南。

著录项

  • 来源
    《Solar Energy》 |2018年第8期|800-806|共7页
  • 作者单位

    Collaborative Innovation Center for Bio-Med Physics Information Technology, Center for Optics & Optoelectronics Research, College of Science, Zhejiang University of Technology;

    State Key Laboratory of Modern Optical Instrumentation, Zhejiang University;

    Collaborative Innovation Center for Bio-Med Physics Information Technology, Center for Optics & Optoelectronics Research, College of Science, Zhejiang University of Technology;

    Collaborative Innovation Center for Bio-Med Physics Information Technology, Center for Optics & Optoelectronics Research, College of Science, Zhejiang University of Technology;

    College of Chemistry and Materials Science, Fujian Key Laboratory of Polymer Materials, Fujian Normal University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biomimetic scattering films; Photovoltaic device coatings; Light harvesting; Ray tracing simulation;

    机译:仿生散射膜;光伏器件涂层;光收集;光线追踪模拟;

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