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All-electrochemical voltage-control of magnetization in metal oxide/metal nanoislands

机译:金属氧化物/金属纳米岛磁化的全电化学电压控制

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摘要

The great prospects for low-power magnetoelectronic devices trigger significant research activity aiming at voltage-control of magnetism. In this field, ion migration and reversible electrochemical reactions currently open a pathway to voltage-reprogrammable magnetic materials. Up to now, such electrochemical manipulation of oxide/metal heterostructures is mainly reported for thin films prepared by physical methods. The present study describes an all-electrochemical route by utilizing electrodeposited FeOx/Fe nanoislands as a starting state. Repeatable electrochemical conversion between ferromagnetic Fe and FeOx is achieved in KOH solution and exploited for voltage control of the magnetization of the nanoislands. For the smallest nanoislands, exhibiting dimensions of a few nanometers, almost complete voltage-induced ON/OFF switching of magnetism at room temperature is detected by in situ transport and ferromagnetic resonance measurements. The observed effects are enhanced in comparison to those of continuous films, which points at the morphology as an influencing factor of electrochemical voltage control of magnetism. The all-electrochemical approach is decisive for extending the application possibilities for voltage-programmable magnetic materials, because, by electrochemical deposition, geometry restrictions can be overcome and 3D structures can be functionalized.
机译:低功耗磁电设备的伟大前景触发了旨在磁控控制的显着研究活动。在该领域中,离子迁移和可逆电化学反应目前打开通向电压 - 可再编程磁性材料的途径。到目前为止,氧化物/金属异质结构的这种电化学操纵主要报道用于通过物理方法制备的薄膜。本研究通过利用电沉积的飞索/ Fe纳米纳米纳米纳米作为起始状态来描述全电化学途径。铁磁性Fe和Feox之间的可重复电化学转换在KOH溶液中实现,并利用了纳米岛磁化的电压控制。对于最小的纳米岛,通过原位运输和铁磁共振测量,检测到几纳米的尺寸,几乎完全电压诱导的室温下的磁性接通/关闭切换。与连续薄膜的相比,观察到的效果得到了增强,该膜在形态点作为磁化电化学电压控制的影响因子。全电化学方法对于扩展用于电压可编程磁性材料的应用可能性是决定性的,因为,通过电化学沉积,可以克服几何限制,并且可以官能化3D结构。

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