4.5 Article

Synthesis of titanium dioxide/reduced graphene oxide nanocomposite material via the incorporated hydrothermal co-precipitation method for fabricating photoanode in dye-sensitized solar cell

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SYNTHETIC METALS
卷 281, 期 -, 页码 -

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ELSEVIER SCIENCE SA
DOI: 10.1016/j.synthmet.2021.116919

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Titanium dioxide; Reduced graphene oxide; Nanocomposite material; Photoanode; Dye-sensitized solar cell

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The study investigated the preparation and characterization of TiO2/rGO nanocomposites and their application in fabricating photoanodes for DSSCs. The optimal rGO weight percentage of 0.6% in the TiO2/rGO nanocomposite material resulted in significantly improved short-circuit current density and energy conversion efficiency compared to pristine TiO2 material. The experiment demonstrated the efficiency of the hydrothermal co-precipitation method in producing well-defined TiO2 nanoparticles on rGO sheets, suggesting the promising potential of eco-friendly TiO2/rGO nanocomposites for DSSC commercialization.
This study first investigates the preparation and characterization of titanium dioxide/reduced graphene oxide (TiO2/rGO) and then proposes the fabrication of photoanode in dye-sensitized solar cell (DSSC) from synthesized materials. Herein, the TiO2/rGO nanocomposites were prepared by the incorporation of hydrothermal approach and co-precipitation method from the precursors of titanium (IV) isopropoxide and graphene oxide. The fabrication of photoanode from the as-prepared TiO2/rGO nanocomposite paste was carried out using screen-printing technique. The performance of fabricated DSSCs was evaluated by current density-voltage curves and electrochemical impedance spectroscopy. The characterizations of TiO2 nanoparticles, TiO2/rGO nanocomposites, and their precursors were confirmed by ultraviolet-visible spectroscopy, Fourier-transform infrared spectroscopy, Raman spectroscopy, X-ray diffraction, and transmission electron microscopy. Experimental data showed that the optimal rGO weight percentage of 0.6% in the TiO2/rGO nanocomposite material fabricated DSSC successfully with the highest values of short-circuit current density (17.65 mA/cm2) and energy conversion efficiency (7.46%), approximately increasing 24% and 25%, respectively, in comparison with the pristine TiO2 material. Characterization results indicated that the incorporated hydrothermal co-precipitation method was efficient in producing well-defined spherical TiO2 nanoparticles decorated on the rGO sheets with an average diameter of 20-25 nm. Therefore, the TiO2/rGO nanocomposites with the eco-friendly and efficient synthesis method are highly promising for manufacturing and commercializing DSSCs widely.

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