January 4, 2016
Journal Article

Built-in Potential in Fe2O3-Cr2O3 Superlattices for Improved Photoexcited Carrier Separation

Abstract

We demonstrate that the different surface terminations exhibited by a-Fe2O3 (hematite) and a-Cr2O3 (eskolaite) in superlattices (SL) of these materials, synthesized with exquisite control by molecular beam epitaxy, determine the heterojunction interface structure and result in controllable, non-commutative band offset values. Precise atomic control of the interface structure allowed us to vary the valence band offset from 0.35 eV to 0.79 eV. This controllable band alignment can be harnessed to generate a built-in potential in Fe2O3-Cr2O3 SLs. For instance, in a 2.5-period SL, a built-in potential of 0.8 eV was realized as measured by x-ray photoelectron spectroscopy of Ti dopants as probe species. The high quality of the SL structure was confirmed by atom probe tomography and scanning transmission electron microscopy. Enhanced photocurrents were measured for a thick Fe2O3 epitaxial film capped with an (Fe2O3)3-(Cr2O3)3 SL; this enhancement was attributed to efficient electron-hole separation in the SL as a result of the band alignment. The Fe-O-Cr bonds at the SL interfaces also red-shifted the onset of photoconductivity to ~1.6 eV. Exploiting the band alignment and photoabsorption properties of Fe2O3-Cr2O3 SLs has the potential to increase the efficiency of hematite-based photoelectrochemical water splitting.

Revised: July 18, 2016 | Published: January 4, 2016

Citation

Kaspar T.C., D.K. Schreiber, S.R. Spurgeon, M.E. McBriarty, G.M. Carroll, D.R. Gamelin, and S.A. Chambers. 2016. Built-in Potential in Fe2O3-Cr2O3 Superlattices for Improved Photoexcited Carrier Separation. Advanced Materials 28, no. 8:1616-1622. PNNL-SA-112959. doi:10.1002/adma.201504545