Jahn-Teller distortion driven magnetic polarons in magnetite

Publication date

2017-06-29

Authors

Huang, H. Y.
Chen, Z. Y.
Wang, Ru-PanISNI 0000000506297519
de Groot, F.M.F.ISNI 0000000114483312
Wu, W. B.
Okamoto, Jun
Chainani, A.
Singh, A.
Li, Z. Y.
Zhou, J. S.

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Article
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Abstract

The first known magnetic mineral, magnetite, has unusual properties, which have fascinated mankind for centuries; it undergoes the Verwey transition around 120 K with an abrupt change in structure and electrical conductivity. The mechanism of the Verwey transition, however, remains contentious. Here we use resonant inelastic X-ray scattering over a wide temperature range across the Verwey transition to identify and separate out the magnetic excitations derived from nominal Fe2+ and Fe3+ states. Comparison of the experimental results with crystal-field multiplet calculations shows that the spin-orbital dd excitons of the Fe2+ sites arise from a tetragonal Jahn-Teller active polaronic distortion of the Fe2+ O6 octahedra. These low-energy excitations, which get weakened for temperatures above 350 K but persist at least up to 550 K, are distinct from optical excitations and are best explained as magnetic polarons.

Keywords

General Chemistry, General Biochemistry,Genetics and Molecular Biology, General Physics and Astronomy

Citation

Huang, H Y, Chen, Z Y, Wang, R P, De Groot, F M F, Wu, W B, Okamoto, J, Chainani, A, Singh, A, Li, Z Y, Zhou, J S, Jeng, H T, Guo, G Y, Park, J G, Tjeng, L H, Chen, C T & Huang, D J 2017, 'Jahn-Teller distortion driven magnetic polarons in magnetite', Nature Communications, vol. 8, 15929. https://doi.org/10.1038/ncomms15929