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Phenomenological Understanding of Hematite Photoanode Performance

Title
Phenomenological Understanding of Hematite Photoanode Performance
Type
Article in International Scientific Journal
Year
2021-04-22
Authors
João Pina
(Author)
Other
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Dias, P.
(Author)
FEUP
Carlos Serpa
(Author)
Other
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João Azevedo
(Author)
Other
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Adélio Mendes
(Author)
FEUP
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João Melo
(Author)
Other
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Journal
Vol. 125 No. 15
Pages: 8274-8284
ISSN: 1932-7447
Indexing
Publicação em ISI Web of Knowledge ISI Web of Knowledge - 0 Citations
Publicação em Scopus Scopus - 0 Citations
Scientific classification
CORDIS: Physical sciences > Chemistry
FOS: Engineering and technology > Chemical engineering
Other information
Authenticus ID: P-00T-WGX
Resumo (PT):
Abstract (EN): The effect of the structural and electronic properties of hematite photoanodes on the charge carrier dynamics was investigated by photoelectrochemistry and transient absorption spectroscopy (TAS). Hematite photoelectrodes were prepared by spray pyrolysis and hydrothermal methods for obtaining films with different thicknesses, morphologies, doping agents, and surface treatments. TAS analyses were performed using standalone photoelectrodes, a three-electrode configuration and in operando. TAS studies revealed that there is a significant electron-hole recombination within the first few hundred picoseconds and smaller amplitude of longer-lived charge carriers, which are responsible for the generated photocurrent observed in photoelectrochemical measurements. The best performing photoelectrodes are Sn-doped hematite thin film annealed at 800 degrees C and coated with IrO2/RuO2 co-catalyst and the Ti-doped hematite nanowires. The effect of surface treatments, i.e., high-temperature annealing responsible for Sn intrinsic doping and co-catalyst coating, on the electron-hole recombination dynamics is negligible at the picosecond time scale. The TAS studies showed a slower electron-hole recombination after Ti incorporation, increased electron density, and enlarged surface area.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 11
Documents
File name Description Size
acs.jpcc.0c11420 2398.86 KB
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