Research Article

Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays

Volume: 8 Number: 3 September 25, 2022
EN TR

Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays

Abstract

The electrodeposition coated graphene oxide (GO) sheets on semiconductor metal oxide substrates are reduced to produce transparent, flexible, and conductive electrodes. Electrochemically produced bismuth oxide nanoflower films with high crystallinity were characterized by depositing reduced graphene oxide (GO) films on top. The influence of coating period on the shape, structure, and characteristics of electrochemically formed metal oxides was also examined. The graphene oxide modified metal oxide electrode was successfully manufactured using an electrochemical method and characterized using potential controlled electrochemical deposition, atomic force microscopy, scanning electron microscopy, energy dispersive spectroscopy, X-ray diffraction techniques, and Raman measurements. By controlling the deposition period, we can regulate the form and size of electroprecipita-ted bismuth oxide/graphene oxide nanostructures using this electrochemical method from aqueous bismuth oxi-de/graphene oxide suspensions. The nanostructured bismuth oxide/graphene oxide electrode that results has high photovoltaic characteristics and can be employed in solar energy conversion applications. Our findings suggest that indium tin oxide (ITO) or bismuth oxide-GO films on gold electrodes may be used to enhance surface area in electrochemical synthesis, and that it is conceivable to synthesize semiconductor metal oxides in GO films for future flexible photovoltaic applications.

Keywords

References

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Details

Primary Language

English

Subjects

Chemical Engineering

Journal Section

Research Article

Publication Date

September 25, 2022

Submission Date

December 21, 2021

Acceptance Date

March 18, 2022

Published in Issue

Year 2022 Volume: 8 Number: 3

APA
Bayrakçeken Nişancı, F. (2022). Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays. Journal of Advanced Research in Natural and Applied Sciences, 8(3), 340-346. https://doi.org/10.28979/jarnas.1039429
AMA
1.Bayrakçeken Nişancı F. Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays. JARNAS. 2022;8(3):340-346. doi:10.28979/jarnas.1039429
Chicago
Bayrakçeken Nişancı, Fatma. 2022. “Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide Graphene Oxide Nanostructure Arrays”. Journal of Advanced Research in Natural and Applied Sciences 8 (3): 340-46. https://doi.org/10.28979/jarnas.1039429.
EndNote
Bayrakçeken Nişancı F (September 1, 2022) Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays. Journal of Advanced Research in Natural and Applied Sciences 8 3 340–346.
IEEE
[1]F. Bayrakçeken Nişancı, “Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays”, JARNAS, vol. 8, no. 3, pp. 340–346, Sept. 2022, doi: 10.28979/jarnas.1039429.
ISNAD
Bayrakçeken Nişancı, Fatma. “Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide Graphene Oxide Nanostructure Arrays”. Journal of Advanced Research in Natural and Applied Sciences 8/3 (September 1, 2022): 340-346. https://doi.org/10.28979/jarnas.1039429.
JAMA
1.Bayrakçeken Nişancı F. Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays. JARNAS. 2022;8:340–346.
MLA
Bayrakçeken Nişancı, Fatma. “Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide Graphene Oxide Nanostructure Arrays”. Journal of Advanced Research in Natural and Applied Sciences, vol. 8, no. 3, Sept. 2022, pp. 340-6, doi:10.28979/jarnas.1039429.
Vancouver
1.Fatma Bayrakçeken Nişancı. Controllable Electrochemical Synthesis and Photovoltaic Performance of Bismuth Oxide/Graphene Oxide Nanostructure Arrays. JARNAS. 2022 Sep. 1;8(3):340-6. doi:10.28979/jarnas.1039429

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DOAJ 32869

EBSCO 32870

Scilit 30371                        

SOBİAD 20460

 

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