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BiFeO 层中定制有源区短路电流密度的优化:迈向第三代钙钛矿太阳能电池的计算步骤

Optimization of short-circuit current density for tailored active region in BiFeO layer: a computational step into 3rd generation perovskite solar cells.

作者信息

Ameen Muqaddas, Bilal Muhammad, Salman Muhammad Umar, Luqman Muhammad, Ramay Shahid M, Mahmood Waqas, Atiq Shahid

机构信息

Centre of Excellence in Solid State Physics, University of the Punjab Lahore-54590 Pakistan

Physics and Astronomy Department, College of Science, King Saud University P. O. Box 2455 Riyadh 11451 Saudi Arabia.

出版信息

RSC Adv. 2025 Jul 21;15(32):25799-25810. doi: 10.1039/d5ra03492b.

Abstract

The global energy crisis has intensified the search for sustainable and clean energy alternatives, with solar energy emerging as a promising solution. The global energy crisis has intensified the search for sustainable and clean energy alternatives, with solar energy emerging as a promising solution. This study investigates the performance of BiFeO (BFO)-based perovskite solar cells using COMSOL Multiphysics simulations, focusing on the optimization of layer thicknesses and material properties. The results demonstrate that varying the thickness of the electron transport layer, absorber layer (BFO), and hole transport layer significantly impacts the short-circuit current density ( ), open-circuit voltage ( ), and power conversion efficiency. Key findings include an optimal BFO thickness of 1210 nm, which balances light absorption and recombination losses, and a peak efficiency of 11.80% was observed. The study highlights the potential of BFO as a multiferroic absorber layer for high-efficiency, low-cost solar cells, paving the way for advancements in renewable energy technology.

摘要

全球能源危机加剧了对可持续和清洁能源替代品的探索,太阳能成为一种有前景的解决方案。全球能源危机加剧了对可持续和清洁能源替代品的探索,太阳能成为一种有前景的解决方案。本研究使用COMSOL Multiphysics模拟研究了基于BiFeO(BFO)的钙钛矿太阳能电池的性能,重点是层厚度和材料特性的优化。结果表明,改变电子传输层、吸收层(BFO)和空穴传输层的厚度会显著影响短路电流密度( )、开路电压( )和功率转换效率。主要发现包括,1210纳米的最佳BFO厚度可平衡光吸收和复合损耗,并且观察到峰值效率为11.80%。该研究突出了BFO作为用于高效、低成本太阳能电池的多铁性吸收层的潜力,为可再生能源技术的进步铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e20c/12278722/f6fc3ba9237e/d5ra03492b-f1.jpg

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