4.7 Article

Facile fabrication of nanotubular heterostructure for enhanced photoelectrochemical performance

期刊

CERAMICS INTERNATIONAL
卷 47, 期 3, 页码 3972-3977

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2020.09.261

关键词

Photoelectrochemistry; Water oxidation; Solar water splitting; Heterostructure; TiO2; CdS

资金

  1. Basic Science Research Program through the National Research Foundation of Korea (NRF) - Ministry of Science, ICT, and Future Planning [NRF-2019R1A2C2002024, 2018R1A5A1025224]
  2. National Research Foundation of Korea [NRF-2018R1C1B5086589]

向作者/读者索取更多资源

The study presents a scalable strategy to fabricate photoanodes with nanotubular structure using CdS-TiO2 heterogeneous composite, which shows a photocurrent density approximately 2 times higher than traditional structures. The streamlined fabrication process has the potential for application in energy conversion devices.
A key challenge in photoelectrochemical water-splitting is the development of photoanodes with improved chemically active and optically efficient. While various nanostructures in heterogeneous materials have been investigated as a potential electrode, existing structures/compositions are still insufficient to meet such demand. Here, we report a scalable strategy to fabricate photoanodes with a nanotubular structure using CdS-TiO2 heterogeneous composite as a model system. Precisely, a similar to 5 mu m thick nanotubular CdS-TiO2 heterostructure is developed on fluorine-doped tin oxide glass by hydrothermal etching and successive ionic layer deposition process. An electron microscopy analysis confirms that the formation of TiO2 nanotubes in the preferential etching direction of [001] as well as uniform coating of the CdS light-absorber layer. We note that the CdS coated on TiO2 nanotubes shows a photocurrent density of 6.9 mA/cm(2) at 1.23 V-RHE, which is similar to 2 times higher than that of CdSnanorod TiO2 heterostructured photoanode. The elemental and optical analysis reveals that the structural modification and sufficient CdS deposition captures a wide range of light absorption from 300 to 550 nm. Our results suggest that an effective fabrication method is applicable for electrodes in numerous energy conversion devices, providing an increase in surface area, light absorption, and chemical stability.

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