论文标题
各种电子和孔传输层对基于CSPBI3的钙钛矿太阳能电池的性能的影响:DFT,SCAPS-1D和WXAMPS框架中的数值研究
Effect of various electron and hole transport layers on the performance of CsPbI3-based perovskite solar cells: A numerical investigation in DFT, SCAPS-1D, and wxAMPS frameworks
论文作者
论文摘要
CSPBI3最近受到了极大的关注,作为钙钛矿太阳能电池(PSC)的吸收剂。但是,基于CSPBI3的PSC尚未达到混合PSC的高性能。在这项工作中,我们使用剑桥串行总能量包(Castep)代码进行了密度功能理论(DFT)研究,以比较和评估其结构,电子和光学特性。对于此CSPBI3吸收器,使用Castep的GGA-PBE方法计算出的电子带隙(例如)为1.483 eV。此外,计算的状态密度(DOS)表现出来自PB-5D轨道的主要贡献,从电子电荷密度图中可以看出,PB原子的大多数电荷也积累了。费米表面计算显示了多播特征,并计算了光学特性以研究CSPBI3的光学响应。 Furthermore, we used IGZO, SnO2, WS2, CeO2, PCBM, TiO2, ZnO, and C60 as the electron transport layers (ETLs), and Cu2O, CuSCN, CuSbS2, Spiro-MeOTAD, V2O5, CBTS, CFTS, P3HT, PEDOT: PSS, NiO, CuO, and CuI as the hole transport layers (HTLS)使用SCAPS-1D太阳能电池模拟软件识别最佳的HTL/CSPBI3/ETL组合。在96个设备结构中,确定了ITO/TIO2/CSPBI3/CBTS/AU的最佳优化设备结构,显示出17.9%的效率。还评估了吸收器和ETL厚度,串联电阻,分流电阻和工作温度的影响,以及它们相应的发电速率,重组速率,电容 - 电容 - 电容 - 电流密度 - 电压和量子效率特征。还将SCAPS-1D的结果与WXAMP仿真软件进行了比较。
CsPbI3 has recently received tremendous attention as a possible absorber of perovskite solar cells (PSCs). However, CsPbI3-based PSCs have yet to achieve the high performance of the hybrid PSCs. In this work, we performed a density functional theory (DFT) study using the Cambridge Serial Total Energy Package (CASTEP) code for the cubic CsPbI3 absorber to compare and evaluate its structural, electronic, and optical properties. The calculated electronic band gap (Eg) using the GGA-PBE approach of CASTEP was 1.483 eV for this CsPbI3 absorber. Moreover, the computed density of states (DOS) exhibited the dominant contribution from the Pb-5d orbital, and most charge also accumulated for the Pb atom as seen from the electronic charge density map. Fermi surface calculation showed multiband character, and optical properties were computed to investigate the optical response of CsPbI3. Furthermore, we used IGZO, SnO2, WS2, CeO2, PCBM, TiO2, ZnO, and C60 as the electron transport layers (ETLs), and Cu2O, CuSCN, CuSbS2, Spiro-MeOTAD, V2O5, CBTS, CFTS, P3HT, PEDOT: PSS, NiO, CuO, and CuI as the hole transport layers (HTLs) to identify the best HTL/CsPbI3/ETL combinations using the SCAPS-1D solar cell simulation software. Among 96 device structures, the best-optimized device structure, ITO/TiO2/CsPbI3/CBTS/Au was identified, which exhibited an efficiency of 17.9%. The effect of absorber and ETL thickness, series resistance, shunt resistance, and operating temperature was also evaluated for the six best devices along with their corresponding generation rate, recombination rate, capacitance-voltage, current density-voltage, and quantum efficiency characteristics. The obtained results from SCAPS-1D were also compared with wxAMPS simulation software.