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Modeling of solar cell efficiency improvement using optical gratings and intermediate absorption band.

机译:使用光栅和中间吸收带来提高太阳能电池效率的建模。

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摘要

This dissertation is a summary of the research effort for the theoretical study, modeling, design, and optimization of solid state photovoltaic devices. The effect of grating structures on the back reflector is studied using electromagnetic modeling and an optimized structure is proposed to enhance the optical absorbance of these devices. Solar cells with optimized arbitrarily shaped gratings exhibit a 29% improvement over planar cells and 9.0% improvement over the optimal cell with periodic gratings. A new model incorporating carrier transport and recombination is proposed and simulation result shows the significance of this model in the modeling of intermediate band solar cell. The material ZnTeO is used as a numerical example for the intermediate band solar cell model. The optimal impurity concentration is determined to be 1018 cm-3 for an optical absorption cross section of 10 -14 cm2. The conversion efficiency of a ZnTe solar cell with a total recombination lifetime of 10 ns is calculated to increase from 14.39% to 26.87% with the incorporation of oxygen. Fully coupled solution to partial differential equations provides insight into the operation of intermediate band solar cell. A doping compensation scheme is proposed to mitigate the space charge effects, and the device achieves conversion efficiencies of approximately 40%, similar to the maximum expected values from prior 0-D models. A spectrally decoupled scheme for subbandgap photovolatics is proposed in which, device structures with non-uniform occupation of intermediate electronic states are employed to reduce the dependence of conversion efficiency on spectral overlap. Solar cell conversion efficiencies are calculated for structures where absorption bands are spatially decoupled due to defined occupation of intermediate states. The spectrally-decoupled device provides a means to achieve high theoretical efficiency independent of spectral overlap that approaches the detailed balance efficiency limit of 63.2% for intermediate state devices without spectral overlap. The analysis of experimental work using the model developed for intermediate band solar cell is conducted and ZnTeO alloy is chosen to be the material for intermediate band solar cell, where oxygen states are served as intermediate sites in the fundamental bandgap.
机译:本文对固态光伏器件的理论研究,建模,设计和优化进行了研究。利用电磁模型研究了光栅结构对后反射器的影响,并提出了一种优化的结构来增强这些器件的光吸收率。具有优化的任意形状光栅的太阳能电池比平面电池具有29%的改进,与具有周期性光栅的最佳电池相比具有9.0%的改进。提出了一个结合载流子传输和复合的新模型,仿真结果表明了该模型在中频太阳能电池建模中的意义。 ZnTeO材料用作中带太阳能电池模型的数值示例。对于10 -14 cm2的光吸收截面,确定最佳杂质浓度为1018 cm-3。计算了总重组寿命为10 ns的ZnTe太阳能电池的转换效率,随着氧的掺入,其转换效率将从14.39%提高到26.87%。偏微分方程的完全耦合解提供了对中带太阳能电池运行的了解。提出了一种掺杂补偿方案来减轻空间电荷效应,并且该器件实现了约40%的转换效率,类似于先前0-D模型的最大期望值。提出了一种用于子带隙光体积的光谱解耦方案,其中采用具有不均匀占据中间电子态的器件结构来减少转换效率对光谱重叠的依赖性。对于由于中间态的确定占据而吸收带在空间上解耦的结构,计算了太阳能电池的转换效率。光谱去耦的器件提供了一种独立于光谱重叠的高理论效率的方法,对于没有光谱重叠的中间状态器件,其达到了63.2%的详细平衡效率极限。使用为中带太阳能电池开发的模型进行了实验工作分析,并选择ZnTeO合金作为中带太阳能电池的材料,其中氧态充当基带隙的中间位点。

著录项

  • 作者

    Lin, Albert S.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Alternative Energy.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 127 p.
  • 总页数 127
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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