Bandgap-Engineered Iron Oxides for Solar Energy Harvesting

  • Seki M
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Abstract

Epitaxial films of Rh-substituted α-Fe2 O3 were fabricated by a pulsed laser deposition technique, and their photoelectrochemical characteristics were investigated for the devel- opment of visible light-responsive photoanodes for water splitting. The photocurrent in the films upon irradiation in the visible region was significantly enhanced after Rh substitution. Moreover, a near-infrared photocurrent was clearly observed for Rh:Fe2 O3 photoanodes, whereas no photoresponse could be detected for the α-Fe2O3 films. These improved photoelectrochemical properties are attributed to the increased light absorp- tion due to the hybridization of Rh-4d states and O-2p states at the valence band maxi- mum. Moreover, Rh substitution also strongly influences the photocarrier transport properties of the films. The electrical conductivity of Rh:Fe2 O3 is higher than that for α-Fe2O3 by two orders of magnitude, which is possibly due to the extended 4d orbitals of the Rh3+ ions. Thus, the improved electrical properties may lead to an increased photocur- rent by lowering the recombination rate of photogenerated carriers.

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APA

Seki, M. (2018). Bandgap-Engineered Iron Oxides for Solar Energy Harvesting. In Iron Ores and Iron Oxide Materials. InTech. https://doi.org/10.5772/intechopen.73227

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