Insulator-Metal-Transition of VO<sub>2</sub> with Modified Orbital Occupancy by Octahedral Symmetry
ORAL
Abstract
Vanadium dioxide (VO2) has received much attention due to its insulator-metal-transition (IMT) accompanied by the structural phase transition from an asymmetric to a symmetry octahedral structure near room temperature (~68 oC). In the structural aspect, the variation of the asymmetric octahedral structure is known to tune the IMT temperature effectively. However, most studies regarding the effect of the octahedral symmetry carried out on the rutile-like VO2 having a symmetrical octahedral structure.
In this presentation, we show the correlation between the asymmetry octahedral structure, orbital occupancy, and the IMT temperature of monoclinic VO2 films with different in-plane compressive strains using x-ray diffraction and x-ray spectroscopy techniques with the theoretical calculation. The octahedral structure with low asymmetry, caused by the in-plane compressive strain, increased the splitting between d// and d//* orbitals and the bandwidth of π*. The modified orbitals suppressed the hybridization of V 3d - O 2p and subsequently increased interdimer hopping energy, lowering the energy barrier for IMT. As a result, the VO2 with the low asymmetric octahedral structure has a lower IMT temperature than the VO2 with a high asymmetric one. These results provide the role of octahedral symmetry in tuning the IMT temperature of VO2.
In this presentation, we show the correlation between the asymmetry octahedral structure, orbital occupancy, and the IMT temperature of monoclinic VO2 films with different in-plane compressive strains using x-ray diffraction and x-ray spectroscopy techniques with the theoretical calculation. The octahedral structure with low asymmetry, caused by the in-plane compressive strain, increased the splitting between d// and d//* orbitals and the bandwidth of π*. The modified orbitals suppressed the hybridization of V 3d - O 2p and subsequently increased interdimer hopping energy, lowering the energy barrier for IMT. As a result, the VO2 with the low asymmetric octahedral structure has a lower IMT temperature than the VO2 with a high asymmetric one. These results provide the role of octahedral symmetry in tuning the IMT temperature of VO2.
*This study was supported in part by NRF Korea (NRF-2018R1D1A1B07045663, NRF-2020K1A3A7A09077715, NRF-2021M3H4A6A02045432, NRF-2021M3I3A1084719 ) and by Korea Basic Science Institute (National Research Facilities and Equipment Center) grant funded by the Ministry of Education (grant No. 2021R1A6C101A429).
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Presenters
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Dooyong Lee
- Department of Chemical Engineering and Materials Science, University of Minnesota