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使用多种电子传输材料的双吸收体太阳能电池的器件建模与数值研究。

Device modeling and numerical study of a double absorber solar cell using a variety of electron transport materials.

作者信息

Cheragee Sheikh Hasib, Alam Mohammad Jahangir

机构信息

Department of Electrical and Electronic Engineering, Bangladesh University of Engineering and Technology, Dhaka-1000, Bangladesh.

出版信息

Heliyon. 2023 Jul 13;9(7):e18265. doi: 10.1016/j.heliyon.2023.e18265. eCollection 2023 Jul.

Abstract

In photovoltaic (PV) technology, halide perovskites are the prospective choice for highly efficient solar absorbers because of their superior optical properties, enhanced efficiency, lightweight, and low cost. In this study, a double absorber solar device using an inorganic perovskite called NaZn.Cu.Br as the top absorber layer and MASnI as the bottom absorber layer is analyzed utilizing the SCAPS-1D simulation tool. The primary goal of this study is to look for a device architecture with a higher efficiency level. Here, current matching over two active layers is performed by adjusting the thickness of both active layers. This research focuses on the effect of various electron transport layers, varied absorber layer thicknesses, temperatures, absorber defect density, and metalwork functions on the performance of the proposed photo-voltaic cells. After researching a variety of solar cell architectures, it is revealed that FTO/ZnO/ NaZn.Cu.Br / MASnI / CuO /Au arrangement has an open circuit voltage of 1.1373 V, Fill Factor of 82.13%, short circuit current density of 34.71 mA/cm and highest power conversion efficiency (PCE) of 32.42%. Here, the simulations of the device indicated that a thickness of around 1 μm for the MASnI absorber was optimum. Additionally, the results of the simulations demonstrate that the efficiency of the device rapidly drops with increasing absorbers defect density and temperature, and device structures are steady at 300 K. Finally; any conductor can make the anode if its work function is larger than or equal to 5.10 eV.

摘要

在光伏(PV)技术中,卤化物钙钛矿因其优异的光学性能、更高的效率、轻质和低成本,成为高效太阳能吸收体的理想选择。在本研究中,利用SCAPS-1D模拟工具分析了一种双吸收体太阳能器件,该器件使用一种名为NaZn.Cu.Br的无机钙钛矿作为顶部吸收层,MASnI作为底部吸收层。本研究的主要目标是寻找一种具有更高效率水平的器件结构。在这里,通过调整两个有源层的厚度来实现两个有源层之间的电流匹配。本研究重点关注各种电子传输层、不同的吸收层厚度、温度、吸收体缺陷密度和金属功函数对所提出的光伏电池性能的影响。在研究了多种太阳能电池结构后发现,FTO/ZnO/NaZn.Cu.Br/MASnI/CuO/Au结构的开路电压为1.1373 V,填充因子为82.13%,短路电流密度为34.71 mA/cm,最高功率转换效率(PCE)为32.42%。在这里,器件模拟表明,MASnI吸收体的厚度约为1μm时是最佳的。此外,模拟结果表明,器件的效率随着吸收体缺陷密度和温度的增加而迅速下降,并且器件结构在300 K时是稳定的。最后;如果任何导体的功函数大于或等于5.10 eV,它都可以用作阳极。

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