g-C3N4 quantum dots decorated on urchin-like TiO2 nanostructures for the photoelectrochemical water splitting

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作者
Fatemeh Mirjamali
Morasae Samadi
Omran Moradlou
Mohammad Zirak
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[1] Alzahra University,Department of Physical Chemistry and Nanochemistry, Faculty of Chemistry
[2] Alzahra University,Department of Analytical Chemistry, Faculty of Chemistry
[3] Hakim Sabzevari University,Department of Physics, Faculty of Science
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This work employs a straightforward, simple and low-cost method to grow g-C3N4 quantum dots (QDs) on a distinctive morphology of urchin-like TiO2 (u-TiO2) nanostructures. u-TiO2 on Ti foil was prepared by the hydrothermal method under the optimized experimental parameters, including hydrothermal time and temperature. Then, for the activation of u-TiO2 under visible light irradiation, g-C3N4 quantum dots (g-C3N4 QDs) were decorated on u-TiO2 by combining a wet pre-coating and subsequent thermal evaporation procedure. The experimental parameters of the process were examined to determine the optimized conditions for the highest photocurrent density (Jph) in a photoelectrochemical (PEC) cell. g-C3N4 QDs were elucidated by transmission electron microscopy (TEM) and diffuse reflectance spectroscopy (DRS). HRTEM results revealed a uniform distribution of anchored g-C3N4 QDs on the surface of u-TiO2 with a mean size of about 10 nm. Optimized decoration of g-C3N4 QDs on the u-TiO2 dramatically enhanced Jph under simulated sunlight irradiation from 0.06 mA/cm2 for pristine u-TiO2 up to 0.12 mA/cm2 for TiO2/g-C3N4QDs photoanodes under the biased potential of 0.5 V versus Ag/AgCl. Based on the results, the type-II heterostructure of u-TiO2/g-C3N4 facilitates electron–hole separation and charge carrier transfer, thereby improving the PEC performance of the proposed photoanode.
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页码:4483 / 4497
页数:14
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