Phase transition-driven modulation of ferroelectricity and the photovoltaic effect in sol–gel-derived BiFeO3-based films

Abstract

BiFeO3 films have attracted much attention because of their high polarization and relatively narrow bandgap. However, major challenges such as low remanent polarization and photovoltaic output have hindered their practical applications and further development. Here, enhanced ferroelectric polarization and photocurrent in Pt/Bi1−xPrxFe0.95Cr0.05O3/FTO devices were achieved by Pr and Cr co-doped BiFeO3 films. X-ray diffraction (XRD) and Raman spectroscopy analyses indicate that Bi1−xPrxFe0.95Cr0.05O3 films have a phase structure with coexisting rhombic (R3c) and tetragonal (P4mm) phases. By controlling the doping element content, dense and uniform films with few chemical defects were obtained. Notably, at the Pr doping level of 15%, a Pmax of 137.1 μC cm−2 and a Pr of 135.8 μC cm−2 were achieved. The short-circuit current density (JSC) and open-circuit voltage (VOC) are −0.12 mA cm−2 and 63.9 mV, respectively, under LED white light illumination. This work provides valuable information for the design and development of next-generation memory and photovoltaic devices.

Graphical abstract: Phase transition-driven modulation of ferroelectricity and the photovoltaic effect in sol–gel-derived BiFeO3-based films

Supplementary files

Article information

Article type
Paper
Submitted
14 Mar 2025
Accepted
12 May 2025
First published
27 May 2025

J. Mater. Chem. C, 2025, Advance Article

Phase transition-driven modulation of ferroelectricity and the photovoltaic effect in sol–gel-derived BiFeO3-based films

G. Zhang, J. Dai, J. Yuan, X. Zhu, H. Liu and C. Gu, J. Mater. Chem. C, 2025, Advance Article , DOI: 10.1039/D5TC01118C

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