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通过核磁共振研究磁铁矿纳米晶体的微观状态和维尔威转变。

Microscopic States and the Verwey Transition of Magnetite Nanocrystals Investigated by Nuclear Magnetic Resonance.

出版信息

Nano Lett. 2018 Mar 14;18(3):1745-1750. doi: 10.1021/acs.nanolett.7b04866. Epub 2018 Feb 23.

Abstract

Fe nuclear magnetic resonance (NMR) of magnetite nanocrystals ranging in size from 7 nm to 7 μm is measured. The line width of the NMR spectra changes drastically around 120 K, showing microscopic evidence of the Verwey transition. In the region above the transition temperature, the line width of the spectrum increases and the spin-spin relaxation time decreases as the nanocrystal size decreases. The line-width broadening indicates the significant deformation of magnetic structure and reduction of charge order compared to bulk crystals, even when the structural distortion is unobservable. The reduction of the spin-spin relaxation time is attributed to the suppressed polaron hopping conductivity in ferromagnetic metals, which is a consequence of the enhanced electron-phonon coupling in the quantum-confinement regime. Our results show that the magnetic distortion occurs in the entire nanocrystal and does not comply with the simple model of the core-shell binary structure with a sharp boundary.

摘要

对粒径在 7nm 到 7μm 之间的磁铁矿纳米晶体的铁核磁共振(NMR)进行了测量。NMR 谱线的线宽在 120K 左右发生剧烈变化,显示出 Verwey 转变的微观证据。在转变温度以上的区域,随着纳米晶体尺寸的减小,谱线宽度增加,自旋-自旋弛豫时间减小。与体相晶体相比,线宽变宽表明磁结构的显著变形和电荷有序的减少,即使结构变形不可观察。自旋-自旋弛豫时间的减小归因于在铁磁金属中抑制了极化子跳跃电导率,这是量子限制状态下增强的电子-声子耦合的结果。我们的结果表明,磁畸变发生在整个纳米晶体中,不符合具有明显边界的核壳二元结构的简单模型。

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