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Rod-Shaped β-FeOOH Synthesis for Hydrogen Production Under Light Irradiation

Overview
Journal ACS Omega
Specialty Chemistry
Date 2021 Nov 22
PMID 34805685
Citations 3
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Abstract

Renewable energy is spotlighted as a resource to replace fossil fuels, and among the resources, active research on hydrogen energy is ongoing. Various methods have been developed to produce hydrogen energy using photoreduction processes. In this study, we synthesized β-phase iron oxyhydroxide (β-FeOOH) using a hydrothermal method with an optimal synthesis time and investigated its photofunctional properties, including hydrogen production. The obtained samples were characterized and compared with reference data. X-ray powder diffraction results corresponded to the peaks of the reference data. A rod structure was confirmed by scanning electron microscopy, and no impurities were observed. The band-gap energy of β-FeOOH was calculated as 1.8-2.6 eV. A photoreduction process was performed based on a photo-Fenton reaction to produce hydrogen by irradiating ultraviolet (UV) on β-FeOOH. The synthesized β-FeOOH was subjected to UV irradiation for 24 h to produce hydrogen, and we confirmed that hydrogen was successfully produced. The properties of β-FeOOH were evaluated after UV irradiation.

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References
1.
Chen Y, Lin Y, Hsu Y, Yen S, Chen K, Chen L . Novel iron oxyhydroxide lepidocrocite nanosheet as ultrahigh power density anode material for asymmetric supercapacitors. Small. 2014; 10(18):3803-10. DOI: 10.1002/smll.201400597. View

2.
Fujishima A, Honda K . Electrochemical photolysis of water at a semiconductor electrode. Nature. 1972; 238(5358):37-8. DOI: 10.1038/238037a0. View

3.
Chemelewski W, Lee H, Lin J, Bard A, Mullins C . Amorphous FeOOH oxygen evolution reaction catalyst for photoelectrochemical water splitting. J Am Chem Soc. 2014; 136(7):2843-50. DOI: 10.1021/ja411835a. View

4.
Asahi R, Morikawa T, Ohwaki T, Aoki K, Taga Y . Visible-light photocatalysis in nitrogen-doped titanium oxides. Science. 2001; 293(5528):269-71. DOI: 10.1126/science.1061051. View

5.
Kim J, Magesh G, Youn D, Jang J, Kubota J, Domen K . Single-crystalline, wormlike hematite photoanodes for efficient solar water splitting. Sci Rep. 2013; 3:2681. PMC: 3775410. DOI: 10.1038/srep02681. View