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Simulation of High-Efficiency Crystalline Silicon Solar Cells With Homo–Hetero Junctions

机译:具有均一-异质结的高效结晶硅太阳能电池的仿真

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A novel solar cell structure consisting of both homojunction and heterojunction (homo–hetero junctions), which possesses a potential to realize high photoelectric conversion efficiency, is investigated by the numerical simulation tool AFORS-HET. We demonstrate that the homo–hetero junctions solar cell has a higher fill factor than the solar cell with heterojunction with intrinsic thin layer (HIT), due to the reduced series resistance, which results in a better conversion efficiency, whereas their interfacial density of states (DOS) values are identical. Through a detailed study of the effect of inserting a homojunction, we find that the field-effect passivation can adequately explain the interesting behaviors that the open-circuit voltage increases and the emitter saturation current density declines when increasing the doping concentration in the P-type crystalline silicon layer. In addition, as compared with the HIT solar cell, the homo–hetero junctions solar cell is less sensitive to the DOS due to the field-effect passivation, leading to a comparable open-circuit voltage even if its total interfacial DOS is 10 times higher.
机译:通过数值模拟工具AFORS-HET,研究了一种由同质结和异质结(均质-异质结)组成的新型太阳能电池结构,该结构具有实现高光电转换效率的潜力。我们证明,由于减少了串联电阻,同质-异质结太阳能电池比具有固有薄层(HIT)的异质结太阳能电池具有更高的填充系数,这导致了更高的转换效率,而它们的界面态密度(DOS)值相同。通过对插入同质结的影响的详细研究,我们发现,场效应钝化可以充分解释当增加P型掺杂浓度时开路电压升高而发射极饱和电流密度降低的有趣现象。晶体硅层。另外,与HIT太阳能电池相比,同质异质结太阳能电池由于场效应钝化而对DOS较不敏感,即使其总界面DOS高10倍,也可得到相当的开路电压。 。

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