The advantages of employing i-a-SiOX:H as a buffer layer in hydrogenated amorphous silicon oxide solar cells

材料科学 非晶硅 缓冲器(光纤) 图层(电子) 光电子学 无定形固体 硅 氧化物 太阳能电池 氧化硅 化学工程 纳米技术 晶体硅 结晶学 计算机科学 化学 电信 冶金 氮化硅 工程类
作者
Tayeb Youcef Belabbas,Abbas Belfar
出处
期刊:Physica Scripta [IOP Publishing]
卷期号:99 (11): 115544-115544 被引量:1
标识
DOI:10.1088/1402-4896/ad8686
摘要

Abstract This study focuses on a p-i-n single junction solar cell made of hydrogenated amorphous silicon oxide (a-SiOx:H), aiming to enhance solar cell efficiency by mitigating the impact of discontinuities and mismatches occurring at the i/p defect-rich interface between the window layer and the absorber layer. To address this concern, the impact of adding a thin i-a-SiOx:H buffer layer between the p-a-SiOx:H window layer and the i-a-SiOx:H active layer was investigated through numerical modeling using the AMPS-1D (Analysis of Micro-electronic and Photonic Structures) computer program. Implementing these changes led to a remarkable increase in conversion efficiency, rising from 5.714% to an impressive 8.929%. The increase in short-circuit current (J SC ), however, is due to improved quantum efficiency at short wavelengths between 350 and 550 nm. Furthermore, enhancing the built-in potential (Vbi) at the i/p interface, combined with the buffer layer’s appropriate band gap energy, increases V OC (open-circuit voltage) from 850 to 993 mV. The substantial improvement in the fill factor (FF) from 63.1 to 83.1% can be largely attributed to the smoothed band offset, primarily facilitated by the presence of the buffer layer at the p/i interface, which led to more efficient extraction of photogenerated holes. To ensure effective usage of the buffer layer, the thickness of a-SiOx:H (buffer layer) varied between 3 nm and 9 nm, while the p-type doping concentration of the same layer was adjusted between 0 and 10 20 cm −3 . In summary, adding a 3 nm thick a-SiOx:H buffer layer with an intermediate band gap and with a p-type doping concentration (NA) below 10 18 cm −3 at the i/p interface improves the electrical and optical properties of the p-i-n solar cells (E FF = 8.951%; V OC = 0.994 V; FF = 83.1%; J SC = 10.842 mA.cm −2 ).
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