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优化电荷传输层以提高无铅铷锗碘钙钛矿太阳能电池的性能:电子传输层和空穴传输层工程的综合分析

Optimizing Charge Transport Layers to Enhance the Performance of Lead-Free RbGeI Perovskite Solar Cells: A Comprehensive Analysis of ETL and HTL Engineering.

作者信息

Reza Md Selim, Ghosh Avijit, Ibrahium Hala A, Islam Md Baharul, Apu Mehedi Hasan, Reza Md Shamim, Rahim Muhammad Ihsan Ibn, Akter Mst Mohona

机构信息

Department of Electrical and Electronic Engineering, Begum Rokeya University, Rangpur 5400, Bangladesh.

Department of Biology, Faculty of Science, King Khalid University, P.O. Box 9004, Abha 61413, Saudi Arabia.

出版信息

Langmuir. 2025 Mar 25;41(11):7865-7885. doi: 10.1021/acs.langmuir.5c00499. Epub 2025 Mar 14.

Abstract

This study investigates innovative hybrid perovskite solar cells using rubidium-germanium-iodide (RbGeI) as the substrate, incorporating various hole transport layers like CuO, CuO, and SnSe, and wide-bandgap chalcogenide electron transport layers (ETLs) like IGZO, WS, InS, and ZnSe. After selecting IGZO as the optimal ETL, its depth was optimized using the SCAPS-1D simulator to evaluate device performance. Three device configurations were examined: device-I (Al/FTO/IGZO/RbGeI/CuO/Ni), device-II (Al/FTO/IGZO/RbGeI/CuO/Ni), and device-III (Al/FTO/IGZO/RbGeI/SnSe/Ni), with a detailed analysis of the doping concentration, thickness of the layer, density of defect, operational temperature, and interface defects. Benchmarks for efficient RbGeI-based SCs were set, with device I achieving the highest power conversion efficiency of 33.84%, fill factor of 86.78%, open-circuit voltage () of 1.13 V, and short-circuit current density () of 34.54 mA/cm. Devices II and III recorded PCEs of 25.91% and 25.21%, respectively. Additionally, series-shunt resistances, generation-recombination rates, carrier dynamics, and quantum efficiency (QE %) were analyzed. Device I shows substantial potential for high-efficiency hybrid perovskite photovoltaic systems based on RbGeI.

摘要

本研究调查了以铷 - 锗 - 碘化物(RbGeI)为基底的创新型混合钙钛矿太阳能电池,其中纳入了各种空穴传输层,如CuO、CuO和SnSe,以及宽带隙硫族化物电子传输层(ETL),如IGZO、WS、InS和ZnSe。在选择IGZO作为最佳ETL后,使用SCAPS - 1D模拟器对其深度进行了优化,以评估器件性能。研究了三种器件配置:器件I(Al/FTO/IGZO/RbGeI/CuO/Ni)、器件II(Al/FTO/IGZO/RbGeI/CuO/Ni)和器件III(Al/FTO/IGZO/RbGeI/SnSe/Ni),并详细分析了掺杂浓度、层厚度、缺陷密度、工作温度和界面缺陷。设定了基于RbGeI的高效SCs的基准,器件I实现了最高功率转换效率33.84%、填充因子86.78%、开路电压()1.13 V和短路电流密度()34.54 mA/cm²。器件II和III的PCE分别为25.91%和25.21%。此外,还分析了串联 - 并联电阻、产生 - 复合率、载流子动力学和量子效率(QE%)。器件I显示出基于RbGeI的高效混合钙钛矿光伏系统具有巨大潜力。

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