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Conduction and Valence Band Positions of Ta<sub>2</sub>O<sub>5</sub>, TaON, and Ta<sub>3</sub>N<sub>5</sub> by UPS and Electrochemical Methods

The Journal of Physical Chemistry B · 2003 · Vol. 107(8) · pp. 1798–1803
Wang‐Jae ChunAkio IshikawaH. FujisawaTsuyoshi TakataJunko N. KondoMasahiko HaraMaki KawaiYasumichi MatsumotoKazunari Domen

Abstract

The conduction and valence band edges for electronic band gaps and Fermi levels are determined for Ta2O5, TaON, and Ta3N5 by ultraviolet photoelectron spectroscopy (UPS) and electrochemical analyses. Reasonable agreement between the results of the two methods is obtained at the pH at which the ζ potentials of the particles are zero. The tops of the valence bands are found to be shifted to higher potential energies on the order Ta2O5 < TaON < Ta3N5, whereas the bottoms of the conduction bands are very similar in the range −0.3 to −0.5 V (vs NHE at pH = 0). From the results, it is concluded that TaON and Ta3N5 are promixing catalysts for the reduction and oxidation of water using visible light in the ranges λ < 520 nm and λ < 600 nm, respectively. It is also demonstrated that the proposed UPS technique is a reliable alternative to electrochemical analyses for determining the absolute band gap positions for materials in aqueous solutions that would otherwise be difficult to measure using electrochemical methods.

Advanced Photocatalysis TechniquesElectronic and Structural Properties of OxidesQuantum Dots Synthesis And PropertiesValence (chemistry)ElectrochemistryMaterials scienceValence bandUltraviolet photoelectron spectroscopyFermi levelConduction bandBand gapX-ray photoelectron spectroscopyAnalytical Chemistry (journal)

Funding

  • Core Research for Evolutional Science and Technology
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References
Energy Positions of Oxide Semiconductors and Photocatalysis with Iron Complex Oxides
Journal of Solid State Chemistry · 1996 · 508 citations
The absolute electrode potential: an explanatory note (Recommendations 1986)
Pure and Applied Chemistry · 1986 · 1,493 citations
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