Danladi Eli, Gyuk Philibus M, Tasie Nicholas N, Egbugha Anselem C, Behera Debidatta, Hossain Ismail, Bagudo Ibrahim M, Madugu Mohammad L, Ikyumbur Jonathan T
Department of Physics, Federal University of Health Sciences, Otukpo, Benue State, Nigeria.
Department of Physics, Kaduna State University, Kaduna, Nigeria.
Heliyon. 2023 Jun 1;9(6):e16838. doi: 10.1016/j.heliyon.2023.e16838. eCollection 2023 Jun.
The high efficiency and low cost of production of perovskite solar cells (PSCs) based on organic-inorganic halides have attracted the attention of researchers. However, due to the intricacy in the synthesis of Spiro-OMeTAD and the high cost of gold (Au) utilized as the back contact (BC), have affected its viability for commercialization. In this present study, a simulation was performed with and without HTM utilizing different metal contacts (Ag, Cr, Cu, Au, Ni and Pt). SCAPS-1D, a software program in one dimension, was used to conduct the simulation. A systematic analysis was done to determine how the metal back contact's work functions affected the PSC both with and without HTM. The outcomes demonstrate that the PSCs' photovoltaic performance is significantly influenced by the metal contact's work function (). The best metal contact for HTM and HTM-free devices was Pt, with a metal work function of 5.65 eV. The initial power conversion efficiencies (PCEs) for the two configurations were 26.229% for HTM-free and 25.608% for HTM-based device. A number of parameters, including absorber thickness, interface defect density, and electron transport material (ETM) thickness, were varied to obtain optimal values of 0.8 μm for both HTM and HTM-free PSCs, 10 cm for both HTM and HTM-free PSCs, and 0.01 μm for both HTM and HTM-free PSCs. These values were then used to simulate the final HTM and HTM-free devices with a PCE of 27.423%, current density () of 27.546 mA/cm, open circuit voltage () of 1.239 V, and fill factor (FF) of 80.347% for HTM-free whereas PCE of 26.767% with of 27.545 mA/cm, of 1.250 V, and FF of 77.733% for HTM based. These outcomes reflect outstanding enhancement of ∼1.05 and ∼1.07 times in PCE and over unoptimized cells with and without HTM.
基于有机-无机卤化物的钙钛矿太阳能电池(PSC)生产效率高且成本低,吸引了研究人员的关注。然而,由于Spiro-OMeTAD合成过程复杂,以及用作背接触(BC)的金(Au)成本高昂,影响了其商业化的可行性。在本研究中,利用不同的金属接触(Ag、Cr、Cu、Au、Ni和Pt)对有无空穴传输层(HTM)的情况进行了模拟。使用一维软件程序SCAPS-1D进行模拟。进行了系统分析,以确定金属背接触的功函数在有无HTM的情况下如何影响PSC。结果表明,PSC的光伏性能受金属接触功函数的显著影响。对于有HTM和无HTM的器件,最佳金属接触是功函数为5.65 eV的Pt。两种配置的初始功率转换效率(PCE),无HTM的为26.229%,基于HTM的器件为25.608%。改变了多个参数,包括吸收层厚度、界面缺陷密度和电子传输材料(ETM)厚度,以获得无HTM和有HTM的PSC的最佳值,吸收层厚度均为0.8μm,界面缺陷密度均为10 cm,ETM厚度均为0.01μm。然后使用这些值模拟最终的无HTM和有HTM器件,无HTM器件的PCE为27.423%,电流密度()为27.546 mA/cm²,开路电压()为1.239 V,填充因子(FF)为80.347%;基于HTM的器件PCE为26.767%,电流密度为27.545 mA/cm²,开路电压为1.250 V,填充因子为77.733%。这些结果表明,与未优化的有HTM和无HTM的电池相比,PCE和电流密度分别提高了约1.05倍和1.07倍。