dc.contributor | Universidade Federal de Pelotas (UFPEL) | |
dc.contributor | Universidade Estadual Paulista (Unesp) | |
dc.contributor | Universitat Jaume i | |
dc.contributor | LNLS | |
dc.date.accessioned | 2014-05-27T11:30:03Z | |
dc.date.available | 2014-05-27T11:30:03Z | |
dc.date.created | 2014-05-27T11:30:03Z | |
dc.date.issued | 2013-07-28 | |
dc.identifier | Journal of Applied Physics, v. 114, n. 4, 2013. | |
dc.identifier | 0021-8979 | |
dc.identifier | http://hdl.handle.net/11449/76062 | |
dc.identifier | 10.1063/1.4816247 | |
dc.identifier | WOS:000322539300046 | |
dc.identifier | 2-s2.0-84882382358 | |
dc.identifier | 2-s2.0-84882382358.pdf | |
dc.description.abstract | First-principles calculations set the comprehension over performance of novel cathodoluminescence (CL) properties of BaZrO3 prepared through microwave-assisted hydrothermal. Ground (singlet, s*) and excited (singlet s** and triplet t**) electronic states were built from zirconium displacement of 0.2 Å in {001} direction. Each ground and excited states were characterized by the correlation of their corresponding geometry with electronic structures and Raman vibrational frequencies which were also identified experimentally. A kind of optical polarization switching was identified by the redistribution of 4dz2 and 4dxz (Zr) orbitals and 2pz O orbital. As a consequence, asymmetric bending and stretching modes theoretically obtained reveal a direct dependence with their polyhedral intracluster and/or extracluster ZrO6 distortions with electronic structure. Then, CL of the as-synthesized BaZrO3 can be interpreted as a result of stable triplet excited states, which are able to trap electrons, delaying the emission process due to spin multiplicity changes. © 2013 AIP Publishing LLC. | |
dc.language | eng | |
dc.relation | Journal of Applied Physics | |
dc.relation | 2.176 | |
dc.relation | 0,739 | |
dc.rights | Acesso restrito | |
dc.source | Scopus | |
dc.subject | Asymmetric bending | |
dc.subject | Excited electronic state | |
dc.subject | First-principles calculation | |
dc.subject | Microwave-assisted hydrothermal | |
dc.subject | Optical polarization switching | |
dc.subject | Quantum mechanical model | |
dc.subject | Spin multiplicity | |
dc.subject | Stretching modes | |
dc.subject | Calculations | |
dc.subject | Cathodoluminescence | |
dc.subject | Electronic states | |
dc.subject | Electronic structure | |
dc.subject | Excited states | |
dc.subject | Quantum theory | |
dc.subject | Zirconium | |
dc.subject | Barium compounds | |
dc.title | Quantum mechanical modeling of excited electronic states and their relationship to cathodoluminescence of BaZrO3 | |
dc.type | Artículos de revistas | |