Physics Department, Faculty of Science, KafrelSheikh University, KafrelSheikh, 33516, Egypt.
Physics Department, Faculty of Science, Fayoum University, Fayoum, 63514, Egypt.
Sci Rep. 2023 Mar 20;13(1):4553. doi: 10.1038/s41598-023-31553-4.
ZrS is transition metal dichalcogenides (TMDCs) which is believed one of the most talented applicants to fabricate photovoltaics. Therefore, we present here for the first-time numerical simulation of novel inorganic ZrS/CuO heterojunction solar cells employing SCAPS-1D. The influence of the thickness, carrier concentration, and bandgap for both the window and absorber layers on the solar cell fundamental parameters was explored intensely. Our results reveal that the solar cell devices performance is mainly affected by many parameters such as the depletion width (W), built-in voltage (V), collection length of charge carrier, the minority carrier lifetime, photogenerated current, and recombination rate. The η of 23.8% was achieved as the highest value for our simulated devices with the V value of 0.96 V, the J value of 34.2 mA/cm, and the FF value of 72.2%. Such efficiency was obtained when the CuO band gap, thickness, and carrier concentration were 1.35 eV, 5.5 µm, and above 10 cm, respectively, and for the ZrS were 1.4 eV, 1 µm, and less than 10 cm, respectively. Our simulated results indicate that the inorganic ZrS/CuO heterojunction solar cells are promising to fabricate low-cost, large-scale, and high-efficiency photovoltaic devices.
ZrS 是过渡金属二硫属化物(TMDCs),被认为是最有前途的光伏材料之一。因此,我们首次采用 SCAPS-1D 对新型无机 ZrS/CuO 异质结太阳能电池进行了数值模拟。深入研究了窗口层和吸收层的厚度、载流子浓度和能带隙对太阳能电池基本参数的影响。我们的结果表明,太阳能电池器件的性能主要受到许多参数的影响,如耗尽宽度(W)、内置电压(V)、载流子收集长度、少数载流子寿命、光生电流和复合率。我们模拟的器件的 η 值达到了 23.8%,V 值为 0.96 V,J 值为 34.2 mA/cm,FF 值为 72.2%。当 CuO 的能带隙、厚度和载流子浓度分别为 1.35 eV、5.5 µm 和大于 10 cm 时,以及 ZrS 的能带隙、厚度和载流子浓度分别为 1.4 eV、1 µm 和小于 10 cm 时,可以获得如此高的效率。我们的模拟结果表明,无机 ZrS/CuO 异质结太阳能电池有望制造出低成本、大规模、高效率的光伏器件。