Polymer-electrolyte-integrated Cr-doped TiO2/Mo-doped BiVO4 heterostructures for quasi-solid-state photovoltaic applications

To overcome the limited visible-light response of pristine titanium dioxide (TiO 2 ) nanorod arrays (TNRAs) and the restricted electron transport of bismuth vanadate (BiVO 4 ) sensitization layers, chromium (Cr)-doped TNRAs coupled with molybdenum (Mo)-doped BiVO 4 (Cr-TNRAs/Mo-BiVO 4 ) were constructed as composite photoanodes and integrated into quasi-solid-state electrolyte (QSE)-based photovoltaic devices. Cr doping was used to regulate the optical absorption and carrier-transport behavior of the TiO 2 nanorod scaffold, while Mo-BiVO 4 served as a visible-light sensitization layer to broaden the spectral response and modulate interfacial charge transfer. The photovoltaic performance of Cr-TNRAs first increased and then decreased with Cr doping level, and Cr-TNRAs-2 showed the best response among the single-doped samples. After Mo-BiVO 4 sensitization, the device output was clearly improved. The optimized Cr-TNRAs-2/Mo-BiVO 4 -2 device achieved a short-circuit current density ( J sc ) of 2.79 mA‧cm −2 , an open-circuit voltage ( V oc ) of 0.44 V and a PCE of 0.38%. UV-vis spectra revealed that the apparent band gap decreased to 2.465-2.481 eV after sensitization, indicating an extended photoresponse. Electrochemical impedance spectroscopy (EIS) results indicated that appropriate Mo-BiVO 4 loading regulates interfacial charge transfer, while device output depends on the combined effects of light absorption, recombination, film quality and charge transport. The optimized device retained about 92% of its photocurrent after 18000 s of intermittent illumination under standard illumination conditions. These results suggest that coupled optimization of the TiO 2 scaffold, BiVO 4 sensitization layer and QSE interface is a feasible route for improving TiO 2 /BiVO 4 -based quasi-solid-state photovoltaic devices.

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Publication Details

Journal
Materials Science in Semiconductor Processing
Published
2026-09-12
DOI
https://doi.org/10.1016/j.mssp.2026.111168
Primary Topic
Advanced Photocatalysis Techniques
Type
article
Field-Weighted Citation Impact
0.00

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article

Polymer-electrolyte-integrated Cr-doped TiO2/Mo-doped BiVO4 heterostructures for quasi-solid-state photovoltaic applications

T. J. Jiang, Na Wang, Siyu Lu, Defeng Wu
Materials Science in Semiconductor Processing
Advanced Photocatalysis Techniques
article

Polymer-electrolyte-integrated Cr-doped TiO2/Mo-doped BiVO4 heterostructures for quasi-solid-state photovoltaic applications

T. J. Jiang, Na Wang, Siyu Lu, Defeng Wu
article en

Abstract

To overcome the limited visible-light response of pristine titanium dioxide (TiO 2 ) nanorod arrays (TNRAs) and the restricted electron transport of bismuth vanadate (BiVO 4 ) sensitization layers, chromium (Cr)-doped TNRAs coupled with molybdenum (Mo)-doped BiVO 4 (Cr-TNRAs/Mo-BiVO 4 ) were constructed as composite photoanodes and integrated into quasi-solid-state electrolyte (QSE)-based photovoltaic devices. Cr doping was used to regulate the optical absorption and carrier-transport behavior of the TiO 2 nanorod scaffold, while Mo-BiVO 4 served as a visible-light sensitization layer to broaden the spectral response and modulate interfacial charge transfer. The photovoltaic performance of Cr-TNRAs first increased and then decreased with Cr doping level, and Cr-TNRAs-2 showed the best response among the single-doped samples. After Mo-BiVO 4 sensitization, the device output was clearly improved. The optimized Cr-TNRAs-2/Mo-BiVO 4 -2 device achieved a short-circuit current density ( J sc ) of 2.79 mA‧cm −2 , an open-circuit voltage ( V oc ) of 0.44 V and a PCE of 0.38%. UV-vis spectra revealed that the apparent band gap decreased to 2.465-2.481 eV after sensitization, indicating an extended photoresponse. Electrochemical impedance spectroscopy (EIS) results indicated that appropriate Mo-BiVO 4 loading regulates interfacial charge transfer, while device output depends on the combined effects of light absorption, recombination, film quality and charge transport. The optimized device retained about 92% of its photocurrent after 18000 s of intermittent illumination under standard illumination conditions. These results suggest that coupled optimization of the TiO 2 scaffold, BiVO 4 sensitization layer and QSE interface is a feasible route for improving TiO 2 /BiVO 4 -based quasi-solid-state photovoltaic devices.

Materials Science in Semiconductor ProcessingVol. 217
Ningxia University (CN), Chongqing University of Technology (CN)
National Natural Science Foundation of China, Natural Science Foundation of Ningxia Province, Key Research and Development Program of Ningxia
Affordable and clean energy
Openalex Percentile: Top 29%
Advanced Photocatalysis Techniques
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