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http://dx.doi.org/10.6564/JKMRS.2018.22.4.101

NMR for magnetite  

Lee, Soonchil (Department of Physics, KAIST)
Publication Information
Journal of the Korean Magnetic Resonance Society / v.22, no.4, 2018 , pp. 101-106 More about this Journal
Abstract
Magnetite is the oldest magnet material known to mankind. It is getting attention again from solid state physics researchers now a days because it is one of the most strongly correlated electron systems. Spin, charge, and orbital orders are interplaying with lattice and involved in the Verwey transition where magnetization, conductivity, and structure changes suddenly. The peculiar ordering states above and below the transition temperature mainly originate from the coexistence of $Fe^{2+}$ and $Fe^{3+}$ ions in the B site of the inverse spinel structure. In particular, the state of the charge and orbital order was the oldest and most intriguing problem. NMR has made significant contribution to the investigation of this question. A. Abragam stated that there is no doubt that NMR is a very powerful tool for the study of ferromagnetic and antiferromagnetic materials. In this mini-review, a short history of NMR investigation of magnetite is presented, providing a support to Abragam's claim.
Keywords
Magnetite; orbital order; charge order; Verwey transition; NMR;
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