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Reversible control of the magnetization of spinel ferrites based electrodes by lithium-ion migration

机译:锂离子迁移可逆控制尖晶石铁氧体基电极的磁化

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摘要

Lithium-ion (Li-ion) batteries based on spinel transition-metal oxide electrodes have exhibited excellent electrochemical performance. The reversible intercalation/deintercalation of Li-ions in spinel materials enables not only energy storage but also nondestructive control of the electrodes’ physical properties. This feature will benefit the fabrication of novel Li-ion controlled electronic devices. In this work, reversible control of ferromagnetism was realized by the guided motion of Li-ions in MnFe2O4 and γ-Fe2O3 utilizing miniature lithium-battery devices. The in-situ characterization of magnetization during the Li-ion intercalation/deintercalation process was conducted, and a reversible variation of saturation magnetization over 10% was observed in both these materials. The experimental conditions and material parameters for the control of the ferromagnetism are investigated, and the mechanism related to the magnetic ions’ migration and the exchange coupling evolution during this process was proposed. The different valence states of tetrahedral metal ions were suggested to be responsible for the different performance of these two spinel materials.
机译:基于尖晶石过渡金属氧化物电极的锂离子(Li-ion)电池具有出色的电化学性能。尖晶石材料中锂离子的可逆嵌入/脱嵌不仅可以存储能量,还可以无损地控制电极的物理性质。该特征将有益于新型锂离子控制的电子设备的制造。在这项工作中,利用微型锂电池装置通过MnFe2O4和γ-Fe2O3中锂离子的引导运动实现了铁磁性的可逆控制。在锂离子嵌入/脱嵌过程中进行了磁化的原位表征,在这两种材料中均观察到饱和磁化强度可逆变化超过10%。研究了控制铁磁性的实验条件和材料参数,并提出了与该过程中磁性离子迁移和交换耦合演化有关的机理。建议使用四价金属离子的不同价态来负责这两种尖晶石材料的不同性能。

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