Ciencias,UNAM

First principles calculations of the electronic properties of bulk Cu2O, clean and doped with Ag, Ni, and Zn

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dc.contributor.author Martínez-Ruiz, A
dc.contributor.author Moreno, MG
dc.contributor.author Takeuchi, N
dc.date.accessioned 2011-01-22T10:26:46Z
dc.date.available 2011-01-22T10:26:46Z
dc.date.issued 2003
dc.identifier.issn 1293-2558
dc.identifier.uri http://hdl.handle.net/11154/1734
dc.description.abstract Using first principles total energy calculations we have studied the electronic properties of bulk Cu2O, clean and doped with Ag, Ni and Zn. The calculated ground state structure of clean Co2O is cubic. Its lattice constant a = 4.30 Angstrom, and bulk modulus B-0 = 108 GPa are in excellent agreement with experimental values a = 4.27 Angstrom, and B-0 = 112 GPa. In its ground state, Cu2O is a semiconductor material with a small direct band gap at the Gamma point. Our calculated value of similar to0.5 eV is smaller than the experimental value of similar to2.0 eV, reflecting the problems of local density functional theory calculating the excited states. Doping with Ag, results in a reduction of the band gap. This result is important, since it implies that the band gap of Cu2O can be engineered by varying the amount of Ag in the crystal. Doping with Ni gives rise to a p-type semiconductor with the impurity levels above the valence band maximum, while doping with Zn results in a n-type semiconductor, with impurity levels above the conduction band minimum. (C) 2003 Editions scientifiques et medicales Elsevier SAS. All rights reserved. en_US
dc.language.iso en en_US
dc.title First principles calculations of the electronic properties of bulk Cu2O, clean and doped with Ag, Ni, and Zn en_US
dc.type Article en_US
dc.identifier.idprometeo 2011
dc.identifier.doi 10.1016/S1293-2558(03)00003-7
dc.source.novolpages 5(2):291-295
dc.subject.wos Chemistry, Inorganic & Nuclear
dc.subject.wos Chemistry, Physical
dc.subject.wos Physics, Condensed Matter
dc.description.index WoS: SCI, SSCI o AHCI
dc.relation.journal Solid State Sciences

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