Discovery of the soft electronic modes of the trimeron order in magnetite
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2001.07815.pdf
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Submitted version
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Author(s) • • • •
Baldini, Edoardo
Belvin, Carina Aiello
Ozel, Ilkem Ozge
Fiete, Gregory
Gedik, Nuh
Date Issued
January 2020
Journal
Nature Physics
Publisher
Springer Science and Business Media LLC
Citation
Baldini, Edoardo et al. “Discovery of the soft electronic modes of the trimeron order in magnetite.” Nature Physics, 16, 5 (January 2020): pages 541–545 © 2020 The Author(s)
Version
Original manuscript
Abstract
The Verwey transition in magnetite (Fe3O4) is the first metal–insulator transition ever observed1 and involves a concomitant structural rearrangement and charge–orbital ordering. Owing to the complex interplay of these intertwined degrees of freedom, a complete characterization of the low-temperature phase of magnetite and the mechanism driving the transition have long remained elusive. It was demonstrated in recent years that the fundamental building blocks of the charge-ordered structure are three-site small polarons called trimerons2. However, electronic collective modes of this trimeron order have not been detected to date, and thus an understanding of the dynamics of the Verwey transition from an electronic point of view is still lacking. Here, we discover spectroscopic signatures of the low-energy electronic excitations of the trimeron network using terahertz light. By driving these modes coherently with an ultrashort laser pulse, we reveal their critical softening and hence demonstrate their direct involvement in the Verwey transition. These findings shed new light on the cooperative mechanism at the origin of magnetite’s exotic ground state.
MIT Department
MIT Materials Research Laboratory
Massachusetts Institute of Technology. Department of Physics
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DOI of Published Version
https://doi.org/10.1038/S41567-020-0823-Y