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Voltage Control of Multiple Electrochemical Processes during Lithium Ion Migration in NiFe 2 O 4 Ferrite.

Qiang CaoZhaohui LiLi CaiSenmiao LiuZeyuan BuTianxiang YangXianyi MengRonghuan XieXiaolin WangQiang LiShi-Shen Yan
Published in: ACS nano (2024)
Li-ion-based electric field control has been attracting significant attention, since it is able to penetrate deep into materials to exhibit diverse and controllable electrochemical processes, which offer more degrees of freedom to design multifunctional devices with low power consumption. As opposed to previous studies that mainly focused on single lithiation/delithiation mechanisms, we reveal three Li-ion modulation mechanisms in the same NiFe 2 O 4 spinel ferrite by in situ magnetometry, i.e ., intercalation, conversion, and space charge, which are respectively demonstrated in high, medium, and low voltage range. During the intercalation stage, the spinel structure is preserved, and a reversible modulation of magnetization arises from the charge transfer-induced variation of Fe valence states (Fe 2+ /Fe 3+ ). Conversion-driven change in magnetization is the largest up to 89 emu g -1 , due to the structural and magnetic phase transitions. Although both intercalation and conversion exhibit sluggish kinetics and long response times, the space charge manifests a faster switching speed and superior durability due to its interface electrostatic effect. These results not only provide a clear and comprehensive understanding on Li-based modulation mechanisms but also facilitate multifunctional and multiscenario applications, such as multistate memory, micromagnetic actuation, artificial synapse, and energy storage.
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