Related Experiment Video
Updated: May 22, 2025

Production and Characterization of Vacuum Deposited Organic Light Emitting Diodes
Published on: November 16, 2018
Investigating Optoelectronic Characteristics and Improving the Efficiency of Mg3AsBr3 Perovskite Solar Cells through
Asadul Islam Shimul1, Avijit Ghosh2, Md Ferdous Ahmed3
1Department of Electrical and Electronic Engineering, Bangabandhu Sheikh Mujibur Rahman Science and Technology University, Gopalganj 8100, Bangladesh.
Abstract:
This study investigates the optoelectronic characteristics of cubic perovskite Mg3AsBr3 for photovoltaic (PV) applications through first-principles density functional theory (DFT), driven by the increasing interest in perovskites for renewable energy solutions. Mg3AsBr3 is explored as an absorber layer in conjunction with Cu2O as the hole transport layer (HTL) and various electron transport layers (ETLs), specifically WS2, ZnO, PC60BM, and C60. SCAPS-1D simulations were employed to optimize parameters including doping concentration, layer thickness, and defect density in the charge transport and absorber layers. The results show significant variations in power conversion efficiency (PCE) depending on the ETL choice. The Al/FTO/WS2/Mg3AsBr3/Cu2O/Au configuration exhibited the optimal performance, achieving a VOC of 1.03 V, an FF of 88.06%, a PCE of 32.55%, and a JSC of 36.01 mA/cm2. Configurations utilizing ZnO, PC60BM, and C60 as ETLs attained PCE of 32.47, 32.21, and 31.63%, respectively. This underscores the significance of choosing the appropriate ETL for optimal perovskite solar cell (PSC) performance. The study assesses aspects including band alignment, defect density, doping concentration, and series-shunt resistances that affect device efficiency and durability. The SCAPS-1D results were validated against wxAMPS simulations, and a machine learning model was created, forecasting essential performance metrics with 84% accuracy. The proposed optimized configurations improve the efficiency and sustainability of PSCs.

