材料科学
铅(地质)
钙钛矿(结构)
图层(电子)
自由电子模型
双层(生物学)
光电子学
电子传输链
活动层
电子
纳米技术
工程物理
化学工程
化学
生物化学
物理
薄膜晶体管
量子力学
地貌学
地质学
工程类
作者
Fawad Aslam,M. Israr Ur Rehman,Junaid Riaz,Atef Masmoudi
标识
DOI:10.1080/15980316.2024.2432883
摘要
Perovskite solar cells (PSCs) are emerging as promising candidates for next-generation photovoltaic technologies, primarily due to their high efficiency and cost-effective manufacturing. A critical challenge in maximizing PSC performance lies in achieving consistent and efficient charge extraction and transport. This study investigates the energy alignment and electron transport in a ZnSe-based electron transport layer (ETL), focusing on their optical and electrical properties to enhance the efficiency of lead-free double perovskite solar cells. We utilize the 1D Solar Cell Capacitance Simulator (SCAPS-1D) to evaluate a lead-free double perovskite (Cs2BiAgI6) light absorber, noted for its environmental compatibility. By strategically manipulating key parameters such as doping density and defect concentration, along with optimizing layer thickness, we significantly enhance the power conversion efficiency (PCE) of Cs2BiAgI6-based double PSCs. Particularly, the incorporation of ZnSe as the ETL leads to an optimized PCE of 30.19%. We examine the impact of three different hole transport layers (HTLs) on device performance: MoO3, Cu2O, and spiro-OMeTAD. We also investigate how fluctuations in operating temperature affect the PCE of Cs2BiAgI6 in real time. Our findings highlight the critical role of the ETL in improving charge transport, offering valuable insights for the development and practical application of high-performance double PSCs.
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