Modeling and Simulation of Lead-Free Perovskite Solar Cell Using SCAPS-1D

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引用次数: 6

Abstract

In this work, the effect of some parameters on tin-based perovskite (CH3NH3SnI3) solar cell were studied through device simulation with respect to adjusting the doping concentration of the perovskite absorption layer, its thickness and the electron affinities of the electron transport medium and hole transport medium, as well as the defect density of the perovskite absorption layer and hole mobility of hole transport material (HTM). A device simulator; the one-dimensional Solar Cells Capacitance Simulator (SCAPS‑1D) program was used for simulating the tin-based perovskite solar cells. The current-voltage (J-V) characteristic curve obtained by simulating the device without optimization shows output cell parameters which include; open circuit voltage (Voc) = 0.64V, short circuit current density (Isc) = 28.50mA/, fill factor (FF) = 61.10%, and power conversion efficiency (PCE) = 11.30% under AM1.5 simulated sunlight of 100mW/cm2 at 300K. After optimization, values of the doping concentration, defect density, electron affinity of electron transport material and hole transport material were determined to be: 1.0x1016cm-3, 1.0x1015cm-3, 3.7 eV and 2.3 eV respectively. Appreciable values of solar cell parameters were obtained with Jsc of 31.38 mA/cm2, Voc of 0.84 V, FF of 76.94% and PCE of 20.35%. when compared with the initial device without optimization, it shows improvement of ~1.10 times in Jsc, ~1.80 times in PCE, ~1.31 times in Voc and ~1.26 time in FF. The results show that the lead-free CH3NH3SnI3 perovskite solar cell which is environmentally friendly is a potential solar cell with high theoretical efficiency of 20.35%.
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基于SCAPS-1D的无铅钙钛矿太阳能电池建模与仿真
本文通过器件模拟研究了钙钛矿吸收层掺杂浓度、钙钛矿吸收层厚度、电子输运介质和空穴输运介质的电子亲和度、钙钛矿吸收层缺陷密度和空穴输运材料(HTM)的空穴迁移率等参数对锡基钙钛矿(CH3NH3SnI3)太阳能电池的影响。设备模拟器;利用一维太阳能电池电容模拟器(SCAPS‑1D)程序模拟锡基钙钛矿太阳能电池。模拟未优化器件得到的电流-电压(J-V)特性曲线显示了输出电池参数,包括:在300K、100mW/cm2的AM1.5模拟日光下,开路电压Voc = 0.64V,短路电流密度Isc = 28.50mA/,填充系数FF = 61.10%,功率转换效率PCE = 11.30%。优化后,电子输运材料和空穴输运材料的掺杂浓度、缺陷密度、电子亲和度分别为:1.0 × 1016cm-3、1.0 × 1015cm-3、3.7 eV和2.3 eV。在Jsc为31.38 mA/cm2, Voc为0.84 V, FF为76.94%,PCE为20.35%的条件下,获得了较为理想的太阳能电池参数。与未优化的初始装置相比,Jsc提高了~1.10倍,PCE提高了~1.80倍,Voc提高了~1.31倍,FF提高了~1.26倍。结果表明,无铅CH3NH3SnI3钙钛矿太阳能电池具有较高的理论效率(20.35%),是一种有潜力的环境友好型太阳能电池。
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