Your browser doesn't support javascript.
loading
Speed limit of the insulator-metal transition in magnetite.
de Jong, S; Kukreja, R; Trabant, C; Pontius, N; Chang, C F; Kachel, T; Beye, M; Sorgenfrei, F; Back, C H; Bräuer, B; Schlotter, W F; Turner, J J; Krupin, O; Doehler, M; Zhu, D; Hossain, M A; Scherz, A O; Fausti, D; Novelli, F; Esposito, M; Lee, W S; Chuang, Y D; Lu, D H; Moore, R G; Yi, M; Trigo, M; Kirchmann, P; Pathey, L; Golden, M S; Buchholz, M; Metcalf, P; Parmigiani, F; Wurth, W; Föhlisch, A; Schüßler-Langeheine, C; Dürr, H A.
Affiliation
  • de Jong S; 1] Stanford Institute for Energy and Materials Sciences, SLAC National Accelerator Laboratory, 2575 Sand Hill Road, Menlo Park, California 94025, USA [2].
Nat Mater ; 12(10): 882-6, 2013 Oct.
Article in En | MEDLINE | ID: mdl-23892787
ABSTRACT
As the oldest known magnetic material, magnetite (Fe3O4) has fascinated mankind for millennia. As the first oxide in which a relationship between electrical conductivity and fluctuating/localized electronic order was shown, magnetite represents a model system for understanding correlated oxides in general. Nevertheless, the exact mechanism of the insulator-metal, or Verwey, transition has long remained inaccessible. Recently, three-Fe-site lattice distortions called trimerons were identified as the characteristic building blocks of the low-temperature insulating electronically ordered phase. Here we investigate the Verwey transition with pump-probe X-ray diffraction and optical reflectivity techniques, and show how trimerons become mobile across the insulator-metal transition. We find this to be a two-step process. After an initial 300 fs destruction of individual trimerons, phase separation occurs on a 1.5±0.2 ps timescale to yield residual insulating and metallic regions. This work establishes the speed limit for switching in future oxide electronics.

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Nat Mater Journal subject: CIENCIA / QUIMICA Year: 2013 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Type of study: Prognostic_studies Language: En Journal: Nat Mater Journal subject: CIENCIA / QUIMICA Year: 2013 Type: Article