Arc Synthesis, Crystal Structure, and Photoelectrochemistry of Copper(I) Tungstate

A little-studied p-type ternary oxide semiconductor, copper­(I) tungstate (Cu2WO4), was assessed by a combined theoretical/experimental approach. A detailed computational study was performed to solve the long-standing debate on the space group of Cu2WO4, which was determined to be triclinic P1. Cu2W...

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Veröffentlicht in:ACS applied materials & interfaces 2021-07, Vol.13 (28), p.32865-32875
Hauptverfasser: Tayar Galante, Miguel, Živković, Aleksandar, Alvim, Jéssica Costa, Calchi Kleiner, Cinthia Cristina, Sangali, Márcio, Taylor, S. F. Rebecca, Greer, Adam J, Hardacre, Christopher, Rajeshwar, Krishnan, Caram, Rubens, Bertazzoli, Rodnei, Macaluso, Robin T, de Leeuw, Nora H, Longo, Claudia
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Sprache:eng
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Zusammenfassung:A little-studied p-type ternary oxide semiconductor, copper­(I) tungstate (Cu2WO4), was assessed by a combined theoretical/experimental approach. A detailed computational study was performed to solve the long-standing debate on the space group of Cu2WO4, which was determined to be triclinic P1. Cu2WO4 was synthesized by a time-efficient, arc-melting method, and the crystalline reddish particulate product showed broad-band absorption in the UV–visible spectral region, thermal stability up to ∼260 °C, and cathodic photoelectrochemical activity. Controlled thermal oxidation of copper from the Cu­(I) to Cu­(II) oxidation state showed that the crystal lattice could accommodate Cu2+ cations up to ∼260 °C, beyond which the compound was converted to CuO and CuWO4. This process was monitored by powder X-ray diffraction and X-ray photoelectron spectroscopy. The electronic band structure of Cu2WO4 was contrasted with that of the Cu­(II) counterpart, CuWO4 using spin-polarized density functional theory (DFT). Finally, the compound Cu2WO4 was determined to have a high-lying (negative potential) conduction band edge underlining its promise for driving energetic photoredox reactions.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.1c03928