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Explanation of the device operation principle of amorphous silicon/ crystalline silicon heterojunction solar cell and role of the inversion of crystalline silicon surface

机译:解释非晶硅/晶体硅异质结太阳能电池的器件工作原理以及晶体硅表面反转的作用

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The device operation principle of amorphous silicon/crystalline silicon heterojunction solar cell is discussed. The band diagram obtained by the computer model developed in the commercial simulator Sentaurus shows that the c-Si surface is inverted at the interface between a-Si and c-Si (heterointerface). A strong inversion gives a strong electric field at the c-Si surface, which in turn facilitates the transport of minority carriers across the heterointerface. A high performance device requires a strongly inverted c-Si surface. Calculations are performed to show that the doping of the doped a-Si layer, the thickness of the intrinsic layer, and the defect state density at the heterointerface all affect the inversion of the crystalline silicon surface. Unlike homojunction devices, the defects in heterojunction devices have a greater role in transport mechanism than in recombination mechanism. The results show that in devices with a large number of defects at the interface, the fill factor degrades with little change in open circuit voltage. This explains why it is relatively easy to obtain VOC's approaching 700 mV with heterojunctions but often with low fill factors.
机译:讨论了非晶硅/晶体硅异质结太阳能电池的器件工作原理。通过在商业模拟器Sentaurus中开发的计算机模型获得的能带图显示,c-Si表面在a-Si和c-Si之间的界面(异质界面)上反转了。强的反型会在c-Si表面产生强电场,这反过来又有助于少数载流子跨异质界面的传输。高性能器件需要强烈倒置的c-Si表面。进行计算表明,掺杂的a-Si层的掺杂,本征层的厚度以及异质界面处的缺陷状态密度都影响晶体硅表面的反转。与同质结器件不同,异质结器件中的缺陷在传输机制中的作用比在重组机制中的作用更大。结果表明,在界面处存在大量缺陷的设备中,开路电压变化很小时,填充因子会降低。这解释了为什么使用异质结获得VOC接近700 mV相对容易,但填充因子通常较低的原因。

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