Nuclear Magnetic Resonance as a probe of nanometre-size orbital textures in magnetic transition metal oxides
| dc.creator | Papavassiliou, G. | |
| dc.creator | Pissas, M. | |
| dc.creator | Belesi, M. | |
| dc.creator | Fardis, M. | |
| dc.creator | Stamopoulos, D. | |
| dc.creator | Kontos, A. | |
| dc.creator | Hennion, M. | |
| dc.creator | Dolinsek, J. | |
| dc.creator | Ansermet, J. P. | |
| dc.creator | Dimitropoulos, C. | |
| dc.date | 2004-12-14 | |
| dc.date.accessioned | 2026-07-07T03:02:41Z | |
| dc.date.available | 2026-07-07T03:02:41Z | |
| dc.description | The study of strong electron correlations in transition metal oxides with modern microscopy and diffraction techniques unveiled a fascinating world of nanosize textures in the spin, charge, and crystal structure. Examples range from high $T_c$ superconducting cuprates and nickelates, to hole doped manganites and cobaltites. However, in many cases the appearance of these textures is accompanied with "glassiness" and multiscale/multiphase effects, which complicate significantly their experimental verification. Here, we demonstrate how nuclear magnetic resonance may be uniquely used to probe nanosize orbital textures in magnetic transition metal oxides. As a convincing example we show for the first time the detection of nanoscale orbital phase separation in the ground state of the ferromagnetic insulator La$_{0.875}$Sr$_{0.125}$MnO$_3$. | |
| dc.description | 4 pages, 4 figures | |
| dc.identifier | https://arxiv.org/abs/cond-mat/0412371 | |
| dc.identifier | http://arxiv.org/abs/cond-mat/0412371 | |
| dc.identifier.uri | http://salesiana.dossiersoluciones.com/handle/123456789/25483 | |
| dc.subject | Strongly Correlated Electrons | |
| dc.title | Nuclear Magnetic Resonance as a probe of nanometre-size orbital textures in magnetic transition metal oxides | |
| dc.type | text |