Rapid fabrication of oxygen defective α-Fe2O3(110) for enhanced photoelectrochemical activities

Defect engineering is increasingly recognized as a viable strategy for boosting the performance of photoelectrochemical (PEC) water splitting using metal oxide-based photoelectrodes. However, previously developed methods for generating point defects associated with oxygen vacancies are rather time-c...

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Veröffentlicht in:Dalton transactions : an international journal of inorganic chemistry 2020-09, Vol.49 (34), p.12037-12048
Hauptverfasser: Mohamad Firdaus Mohamad Noh, Ullah, Habib, Arzaee, Nurul Affiqah, Azhar Ab Halim, Muhammad Amir Faizal Abdul Rahim, Nurul Aida Mohamed, Safaei, Javad, Siti Nur Farhana Mohd Nasir, Wang, Guoxiu, Mohd Asri Mat Teridi
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Sprache:eng
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Zusammenfassung:Defect engineering is increasingly recognized as a viable strategy for boosting the performance of photoelectrochemical (PEC) water splitting using metal oxide-based photoelectrodes. However, previously developed methods for generating point defects associated with oxygen vacancies are rather time-consuming. Herein, high density oxygen deficient α-Fe2O3 with the dominant (110) crystal plane is developed in a very short timescale of 10 minutes by employing aerosol-assisted chemical vapor deposition and pure nitrogen as a gas carrier. The oxygen-defective film exhibits almost 8 times higher photocurrent density compared to a hematite photoanode with a low concentration of oxygen vacancies which is prepared in purified air. The existence of oxygen vacancies improves light absorption ability, accelerates charge transport in the bulk of films, and promotes charge separation at the electrolyte/semiconductor interface. DFT simulations verify that oxygen-defective hematite has a narrow bandgap, electron–hole trapped centre, and strong adsorption energy of water molecules compared to pristine hematite. This strategy might bring PEC technology another step further towards large-scale fabrication for future commercialization.
ISSN:1477-9226
1477-9234
DOI:10.1039/d0dt00406e