Abstract Potential of interdigitated back-contact silicon heterojunction solar cells for liquid phase crystallized silicon on glass with efficiency above 14%
首页> 外文期刊>Solar Energy Materials and Solar Cells: An International Journal Devoted to Photovoltaic, Photothermal, and Photochemical Solar Energy Conversion >Potential of interdigitated back-contact silicon heterojunction solar cells for liquid phase crystallized silicon on glass with efficiency above 14%
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Potential of interdigitated back-contact silicon heterojunction solar cells for liquid phase crystallized silicon on glass with efficiency above 14%

机译:用于液相结晶硅的玻璃上的液相结晶硅的电位,效率高于14%

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AbstractLiquid phase crystallization of silicon (LPC-Si) on glass is a promising method to produce high quality multi-crystalline Si films with macroscopic grains. In this study, we report on recent improvements of our interdigitated back-contact silicon heterojunction contact system (IBC-SHJ), which enabled open circuit voltages as high as 661mV and efficiencies up to 14.2% using a 13μm thin n-type LPC-Si absorbers on glass. The influence of the BSF width on the cell performance is investigated both experimentally and numerically. We combine 1D optical simulations using GenPro4 and 2D electrical simulations using Sentaurus? TCAD to determine the optical and electrical loss mechanisms in order to estimate the potential of our current LPC-Si absorbers. The simulations reveal an effective minority carrier diffusion length of 26μm and further demonstrate that a doping concentration of 4 × 1016cm?3and a back surface field width of 60μm are optimum values to further increase cell efficiencies.Highlights?We present interdigitate back contact heterojunction cells of liquid phase crystallized Si on glass.?Cell e
机译:<![cdata [ 抽象 玻璃上硅(LPC-Si)的液相结晶是一种有希望的方法,用于生产具有宏观晶粒的高质量多晶硅膜。在这项研究中,我们报告了最近改进了我们的互脱的背面硅杂核异质结触点系统(IBC-SHJ),其使开路电压高达661MV和使用13μm薄N型LPC-SI高达14.2%的效率。玻璃上的吸收剂。在实验和数值上研究了BSF宽度对细胞性能的影响。我们使用Sentaurus使用GenPro4和2D电气模拟结合1D光学模拟? TCAD确定光学和电力损耗机制,以估计我们目前的LPC-SI吸收剂的电位。仿真揭示了有效的少数载波扩散长度为26μm,进一步证明了4×10 16 cm 和后表面场宽度为60μm是最佳值,以进一步增加细胞效率。 突出显示 我们呈现液相结晶SI的液相结晶SI的交互反向联系杂交细胞。 单元格e

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