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J Am Chem Soc ; 135(31): 11429-32, 2013 Aug 07.
Article in English | MEDLINE | ID: mdl-23865780

ABSTRACT

Photocatalytic activity depends on the optimal alignment of electronic levels at the molecule-semiconductor interface. Establishing the level alignment experimentally is complicated by the uncertain chemical identity of the surface species. We address the assignment of the occupied and empty electronic levels for the prototypical photocatalytic system consisting of methanol on a rutile TiO2(110) surface. Using many-body quasiparticle (QP) techniques, we show that the frontier levels measured in UV photoelectron and two-photon photoemission spectroscopy experiments can be assigned to molecularly chemisorbed methanol rather than its dissociated product, the methoxy species. We find that the highest occupied molecular orbital of the methoxy species is much closer to the valence band maximum, suggesting why it is more photocatalytically active than the methanol molecule. We develop a general semiquantitative model for predicting many-body QP energies based on the electronic screening within the bulk, molecular, or vacuum regions of the wave functions at molecule-semiconductor interfaces.


Subject(s)
Methanol/chemistry , Titanium/chemistry , Catalysis , Electrons , Models, Molecular , Photochemical Processes , Photoelectron Spectroscopy , Semiconductors , Surface Properties
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