| Literature DB >> 27028895 |
José Antonio Aramburu1, Pablo García-Fernández2, Juan María García-Lastra3, Miguel Moreno2.
Abstract
First-principle calculations together with analysis of the experimental data found for 3d(9) and 3d(7) ions in cubic oxides proved that the center found in irradiated CaO:Ni(2+) corresponds to Ni(+) under a static Jahn-Teller effect displaying a compressed equilibrium geometry. It was also shown that the anomalous positive g∥ shift (g∥ -g0 =0.065) measured at T=20 K obeys the superposition of the |3 z(2) -r(2) ⟩ and |x(2) -y(2) ⟩ states driven by quantum effects associated with the zero-point motion, a mechanism first put forward by O'Brien for static Jahn-Teller systems and later extended by Ham to the dynamic Jahn-Teller case. To our knowledge, this is the first genuine Jahn-Teller system (i.e. in which exact degeneracy exists at the high-symmetry configuration) exhibiting a compressed equilibrium geometry for which large quantum effects allow experimental observation of the effect predicted by O'Brien. Analysis of the calculated energy barriers for different Jahn-Teller systems allowed us to explain the origin of the compressed geometry observed for CaO:Ni(+) .Entities:
Keywords: Jahn-Teller distortion; O'Brien effect; ab initio calculations; compressed geometry; doping
Year: 2016 PMID: 27028895 DOI: 10.1002/cphc.201600206
Source DB: PubMed Journal: Chemphyschem ISSN: 1439-4235 Impact factor: 3.102