Issue 32, 2025, Issue in Progress

Optimization of short-circuit current density for tailored active region in BiFeO3 layer: a computational step into 3rd generation perovskite solar cells

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 BiFeO3 (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 (Jsc), open-circuit voltage (Voc), 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.

Graphical abstract: Optimization of short-circuit current density for tailored active region in BiFeO3 layer: a computational step into 3rd generation perovskite solar cells

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Article information

Article type
Paper
Submitted
18 May 2025
Accepted
08 Jul 2025
First published
21 Jul 2025
This article is Open Access
Creative Commons BY-NC license

RSC Adv., 2025,15, 25799-25810

Optimization of short-circuit current density for tailored active region in BiFeO3 layer: a computational step into 3rd generation perovskite solar cells

M. Ameen, M. Bilal, M. U. Salman, M. Luqman, S. M. Ramay, W. Mahmood and S. Atiq, RSC Adv., 2025, 15, 25799 DOI: 10.1039/D5RA03492B

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