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Ultrafast modification of the electronic structure of a correlated insulator

Authors :
Grånäs, Oscar
Vaskivskyi, I.
Wang, X.
Thunström, Patrik
Ghimire, S.
Knut, Ronny
Söderström, Johan
Kjellsson, L.
Turenne, Diego
Engel, R. Y.
Beye, M.
Lu, J.
Higley, D. J.
Reid, A. H.
Schlotter, W.
Coslovich, G.
Hoffmann, M.
Kolesov, G.
Schissler-Langeheine, C.
Styervoyedov, A.
Tancogne-Dejean, N.
Sentef, M. A.
Reis, D. A.
Rubio, A.
Parkin, S. S. P.
Karis, Olof
Rubensson, J. -e.
Eriksson, Olle
Dürr, Hermann
Grånäs, Oscar
Vaskivskyi, I.
Wang, X.
Thunström, Patrik
Ghimire, S.
Knut, Ronny
Söderström, Johan
Kjellsson, L.
Turenne, Diego
Engel, R. Y.
Beye, M.
Lu, J.
Higley, D. J.
Reid, A. H.
Schlotter, W.
Coslovich, G.
Hoffmann, M.
Kolesov, G.
Schissler-Langeheine, C.
Styervoyedov, A.
Tancogne-Dejean, N.
Sentef, M. A.
Reis, D. A.
Rubio, A.
Parkin, S. S. P.
Karis, Olof
Rubensson, J. -e.
Eriksson, Olle
Dürr, Hermann
Publication Year :
2022

Abstract

A nontrivial balance between Coulomb repulsion and kinematic effects determines the electronic structure of correlated electron materials. The use of electromagnetic fields strong enough to rival these native microscopic interactions allows us to study the electronic response as well as the time scales and energies involved in using quantum effects for possible applications. We use element-specific transient x-ray absorption spectroscopy and high-harmonic generation to measure the response to ultrashort off-resonant optical fields in the prototypical correlated electron insulator NiO. Surprisingly, fields of up to 0.22 V/angstrom lead to no detectable changes in the correlated Ni 3d orbitals contrary to previous predictions. A transient directional charge transfer is uncovered, a behavior that is captured by first-principles theory. Our results highlight the importance of retardation effects in electronic screening and pinpoints a key challenge in functionalizing correlated materials for ultrafast device operation.

Details

Database :
OAIster
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1349083668
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1103.PhysRevResearch.4.L032030