Bandgap-Engineered Iron Oxides for Solar Energy Harvesting

M. Seki
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引用次数: 6

Abstract

Epitaxial films of Rh-substituted α-Fe 2 O 3 were fabricated by a pulsed laser deposition technique, and their photoelectrochemical characteristics were investigated for the development 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:Fe 2 O 3 photoanodes, whereas no photoresponse could be detected for the α-Fe 2 O 3 films. These improved photoelectrochemical properties are attributed to the increased light absorp- tion due to the hybridization of Rh-4 d states and O-2 p states at the valence band maximum. Moreover, Rh substitution also strongly influences the photocarrier transport properties of the films. The electrical conductivity of Rh:Fe 2 O 3 is higher than that for α-Fe 2 O 3 by two orders of magnitude, which is possibly due to the extended 4 d orbitals of the Rh 3+ ions. Thus, the improved electrical properties may lead to an increased photocurrent by lowering the recombination rate of photogenerated carriers.
用于太阳能收集的带隙工程氧化铁
采用脉冲激光沉积技术制备了铑取代α- fe2o3外延膜,研究了其光化学特性,为制备可见光响应的水分解光阳极提供了理论依据。Rh取代后,薄膜在可见光区辐照后的光电流明显增强。此外,Rh: fe2o3光阳极具有明显的近红外光电流,而α- fe2o3光阳极则没有光响应。这些改进的光电化学性质是由于在价带最大值处rh - 4d态和o - 2p态的杂化增加了光吸收。此外,Rh取代也强烈影响薄膜的光载流子输运特性。Rh: fe2o3的电导率比α- fe2o3的电导率高两个数量级,这可能是由于rh3 +离子的4 d轨道延长所致。因此,改进的电学性能可以通过降低光生载流子的复合速率而导致光电流的增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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