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Impact of solar upconversion on photovoltaic cell efficiency: optical models of state-of-the-art solar cells with upconverters

机译:太阳升高对光伏电池效率的影响:具有上变频器的最先进太阳能电池的光学模型

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Current photovoltaic technologies harvest only a fraction of incoming solar energy since they are unable to utilize photons with energies below the cell band gap. Placed behind a solar cell, the upconverter converts transmitted low-energy photons to photons with energies higher than the cell band gap. The higher energy photons are absorbed by the solar cell and contribute to the photocurrent. We developed optical models of several state-of-the-art commercial and research thin-film solar cells incorporating the upconversion layer. We present both analytical models based on published EQE data as well as detailed finite difference time domain (FDTD) models that incorporate absorption in all cell layers. We model the improvement in absorption and overall cell performance of amorphous Si, CIGS, GaAs, CdTe, and Cu_2O cells with upconverting layers. We incorporate and discuss the effect of interface texture and different cell layers on the absorption of upconverted photons and make suggestions for improving the overall cell design to get the maximum benefit from upconversion. We estimate that the cell efficiency enhancement can range from 0.5% to up to 5% absolute depending on the cell type and upconversion efficiency. This work connects to the fundamental efficiency limit analysis of narrow-bandwidth solar upconversion by our collaborators [1], but presents concrete optical models of current solar cells and discusses the promise of upconversion for particular applications.
机译:电流光伏技术仅收获的一部分进入太阳能,因为它们不能利用电池带隙下方的能量的光子。放置在太阳能电池后面,上变频器将发射的低能量光子转换为具有高于单元带隙的能量的光子。较高的能量光子被太阳能电池吸收并有助于光电流。我们开发了若干最先进的商业和研究薄膜太阳能电池的光学型号,其包含上变化层。我们基于已发布的EQE数据以及详细的有限差分时域(FDTD)模型介绍了所有细胞层中的吸收的详细有限差分时域(FDTD)模型。我们利用上变频层模拟无定形Si,CIGS,GaAs,CdTe和Cu_2O细胞的吸收和整体细胞性能的改善。我们纳入并讨论了界面纹理和不同细胞层对上反相光子的吸收的影响,并提出改善整体电池设计以获得最大益处的建议。根据细胞类型和上变频效率,我们估计电池效率增强的绝对电池效率增强的范围为0.5%至高达5%。这项工作通过我们的合作者[1]连接了窄带太阳能上升的基本效率限制分析,但介绍了当前太阳能电池的混凝土光学型号,并讨论了特定应用的上升性的承诺。

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