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Abstract

Enhancement of the Structural and Optical Properties of Ce-Doped V2O5 for Optoelectronic Applications †

1
Laboratory of Mechanics, Production and Industrial Engineering (LMPGI), Higher School of Technology, Hassan II University of Casablanca, Casablanca 20100, Morocco
2
Laboratoire de Physique Des Matériaux Avancés Et Thermique (LPMAT), Faculty of Sciences Ain-Chock, Hassan II University of Casablanca, Casablanca 20100, Morocco
*
Author to whom correspondence should be addressed.
Presented at the 3rd International Electronic Conference on Processes—Green and Sustainable Process Engineering and Process Systems Engineering (ECP 2024), 29–31 May 2024; Available online: https://sciforum.net/event/ECP2024.
Proceedings 2024, 105(1), 94; https://doi.org/10.3390/proceedings2024105094
Published: 28 May 2024
Among transition metal oxides (WO3 and MoO3), vanadium oxides have garnered significant attention for their outstanding properties and diverse applications across various fields. For instance, vanadium pentoxide (V2O5) is known for its chemical sensing, photochromism, and catalytic properties, making it a suitable material for electronic information displays, electrochromic devices, optical–electrical switches, color memory devices, and more. Vanadium pentoxides (V2O5) have been already prepared by various methods. V2O5 is the most saturated (highest oxidation state) oxide and therefore the most stable one in the V–O system. It crystallizes with an orthorhombic unit cell structure belonging to the Pmnm space group. As materials with reduced dimensions often exhibit unique properties distinct from their bulk counterparts, recent efforts have focused on synthesizing nanostructures of vanadium oxides and studying their structure–property relationships. The V2−4xCe5xO5 nanoparticles were prepared using a solid-state technique. Depending on the X-ray diffraction analysis, the NPs crystallized in an orthorhombic structure. A significant decrease in the crystallite size and band gap energy was observed. Eg was found to be 1.83 eV with Ce content. This is attributed to lattice expansion via Ce ions and the formation of oxygen vacancies within the bandgap. The absorption coefficient, optical transmission, and the complex refractive index were also determined. Substitution-doped V2O5 improved, allowing it to be useful for solar cells and optoelectronics.

Author Contributions

A.E.: Preparation, investigation, methodology, writing-original draft, review and editing. S.E.: Preparation, investigation, methodology, writing-original draft, review and editing. Y.E.A.: Preparation, investigation, methodology, writing-original draft, review and editing. F.L.: supervision, visualization. A.T.: supervision, visualization. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

Dataset available on request from the authors.

Conflicts of Interest

The authors declare no conflicts of interest.
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Share and Cite

MDPI and ACS Style

Elouafi, A.; Ezairi, S.; El Azizi, Y.; Lmai, F.; Tizliouine, A. Enhancement of the Structural and Optical Properties of Ce-Doped V2O5 for Optoelectronic Applications. Proceedings 2024, 105, 94. https://doi.org/10.3390/proceedings2024105094

AMA Style

Elouafi A, Ezairi S, El Azizi Y, Lmai F, Tizliouine A. Enhancement of the Structural and Optical Properties of Ce-Doped V2O5 for Optoelectronic Applications. Proceedings. 2024; 105(1):94. https://doi.org/10.3390/proceedings2024105094

Chicago/Turabian Style

Elouafi, Assaad, Sara Ezairi, Youssef El Azizi, Fatima Lmai, and Abdeslam Tizliouine. 2024. "Enhancement of the Structural and Optical Properties of Ce-Doped V2O5 for Optoelectronic Applications" Proceedings 105, no. 1: 94. https://doi.org/10.3390/proceedings2024105094

APA Style

Elouafi, A., Ezairi, S., El Azizi, Y., Lmai, F., & Tizliouine, A. (2024). Enhancement of the Structural and Optical Properties of Ce-Doped V2O5 for Optoelectronic Applications. Proceedings, 105(1), 94. https://doi.org/10.3390/proceedings2024105094

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