Verwey transition as evolution from electronic nematicity to trimerons via electron-phonon coupling
arXiv:2202.08744 · doi:10.1126/sciadv.adf8220
Abstract
Understanding the driving mechanisms behind metal-insulator transitions (MITs) is a critical step towards controlling material's properties. Since the proposal of charge-order-induced MIT in magnetite Fe3O4 in 1939 by Verwey, the nature of the charge order and its role in the transition have remained elusive-a longstanding challenge in the studies of complex oxides. Recently, a trimeron order was discovered in the low-temperature monoclinic structure of Fe3O4; however, the expected transition entropy change in forming trimeron at the Verwey transition is greater than the observed value, which arises a reexamination of the ground state in the high-temperature phase. Here we use electron diffraction to unveil that a nematic charge order on particular Fe sites emerges in the high-temperature cubic structure of bulk Fe3O4, and that upon cooling, a competitive intertwining of charge and lattice orders leads to the emergence of the Verwey transition. Moreover, MeV ultrafast electron diffraction (UED) provides a dynamic measure of the strong coupling between photoexcited electrons and the X3 phonon modes. Our findings discover a new type of electronic nematicity in correlated materials and offer novel insights into the Verwey transition mechanism in Fe3O4 via the electron-phonon coupling.
Supplementary materials are added
References in corpus (6)
- Theory of Intertwined Orders in High Temperature Superconductors
- Resonant Elastic Soft X-Ray Scattering
- Mechanism of the Verwey transition in magnetite
- Origin of the Verwey transition in magnetite: Group theory, electronic structure, and lattice dynamics study
- High-energy photoemission on Fe3O4: Small polaron physics and the Verwey transition
- Electronic structure of charge-ordered Fe3O4 from calculated optical, megneto-optical Kerr effect, and O K-edge x-ray absorption spectra
Cited by in corpus (5)
- Ultrafast generation of hidden phases via energy-tuned electronic photoexcitation in magnetite
- Response of the Verwey transition in magnetite to a controlled point-like disorder induced by 2.5 MeV electron irradiation
- Dual-stage structural response to quenching charge order in magnetite
- Simultaneous mapping of the ultrafast time and fluence dependence of the laser-induced insulator-to-metal transition in magnetite
- The impact of hydrostatic pressure, nonstoichiometry, and doping on trimeron lattice excitations in magnetite during axis switching