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Simulation of hetero-junction silicon solar cells with AMPS-1D

机译:用AMPS-1D模拟异质结硅太阳能电池

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摘要

Mono- and poly-crystalline silicon solar cell modules currently represent between 80% and 90% of the PV world market. The reasons are the stability, robustness and reliability of this kind of solar cells as compared to those of emerging technologies. Then, in the mid-term, silicon solar cells will continue playing an important role for their massive terrestrial application. One important approach is the development of silicon solar cells processed at low temperatures (less than 300 1C) by depositing amorphous silicon layers with the purpose of passivating the silicon surface, and avoiding the degradation suffered by silicon when processed at temperatures above 800 1C. This kind of solar cells is known as HIT cells (hetero-junction with an intrinsic thin amorphous layer) and are already produced commercially (Sanyo Ltd.), reaching efficiencies above 20%. In this work, HIT solar cells are simulated by means of AMPS-1D, which is a program developed at Pennsylvania State University.We shall discuss the modifications required by AMPS-1D for simulating this kind of structures since this program explicitly does not take into account interfaces with high interfacial density of states as occurs at amorphouscrystalline silicon hetero-junctions.
机译:目前,单晶硅和多晶硅太阳能电池模块占光伏世界市场的80%至90%。原因是与新兴技术相比,这种太阳能电池的稳定性,坚固性和可靠性。然后,在中期,硅太阳能电池将继续在其大规模地面应用中发挥重要作用。一种重要的方法是通过沉积非晶硅层来钝化硅表面,并避免在高于800 1C的温度下处理时遭受的硅降解,从而在低温(低于300 1C)下处理硅太阳能电池。这种太阳能电池被称为HIT电池(具有固有的薄非晶层的异质结),并且已经在商业上生产(Sanyo Ltd.),效率达到20%以上。在这项工作中,通过宾夕法尼亚州立大学开发的程序AMPS-1D对HIT太阳能电池进行了模拟。由于该程序未明确考虑到AMPS-1D对此类结构的模拟,因此我们将讨论其修改。如在非晶晶体硅异质结处所发生的那样,这种界面具有高的界面密度。

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