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Voltage-tunable magnetic hysteresis and domain patterns by electrochemical reactions

Voltage-tunable magnetic hysteresis and domain patterns by electrochemical reactions
通过电化学反应实现电压可调磁滞和磁畴模式
批准号:
400178764
负责人:
Professorin Dr.-Ing. Karin Leistner
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2018
资助国家:
德国
项目状态:
已结题
起止时间:
2017-12-31 至 2022-12-31

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中文摘要
翻译
在自旋电子学和基于磁的流体芯片实验室系统的领域中,对薄膜中的磁性的控制在众多现代设备提案中起着关键作用。通过外部电压操纵磁性被强烈地讨论为遭受焦耳加热的基于电流的方法的节能替代方案。在电压控制磁性的研究领域中,纳米磁性的电化学(磁离子)控制是一个新兴的课题。利用磁性薄膜中的电化学相变时,外部电压对磁态的大的影响和非易失性设置都是可以实现的。在所提出的项目中,我们要研究可逆的电化学反应,用于电压调谐金属/氧化物薄膜的磁滞和磁畴。我们打算使用铁和钴基磁性薄膜作为电极和液体电解质,使增强的电场效应和高离子迁移率的磁铁/电解质界面。通过电化学转换发生的结构,成分和微观结构变化的作用将被分析和相关的磁性能变化。我们希望找出关键的影响因素和条件,提高反应层的厚度和高可逆性的磁离子反应。我们将努力获得具有非易失性行为的可调Fe或Co层,其中磁性状态可以通过适度的电压和小的初始电流来设置。这种可调顶层与表现出垂直磁各向异性的底层的组合有望使磁离子效应的可变性指数化。理想情况下,可逆的磁离子自旋重定向将在几个纳米内实现。为了跟踪电解质内极化过程中的局部磁性变化,将开发一种与克尔显微镜兼容的电化学电池。这种原位克尔显微镜设置有望解决,第一次,使用液体电解质时,磁离子反应对磁畴的局部影响。图案化结构中的磁离子效应将被研究为电压可调的杂散场景观和畴壁陷阱。
英文摘要
The control over magnetic properties in thin films plays a pivotal role in a multitude of modern device proposals in the fields of spintronics and magnet-based fluidic lab-on-chip systems. The manipulation of magnetism by an external voltage is strongly discussed as an energy-efficient alternative to current-based approaches that suffer from Joule heating. Within the research field of voltage control of magnetism, the electrochemical (magneto-ionic) control of nanoscale magnetism is a rapidly emerging topic. Both large effects and non-volatile setting of magnetic states by an external voltage come within reach when exploiting electrochemical phase transformations in magnetic films.In the proposed project we want to investigate reversible electrochemical reactions for voltage-tuning the magnetic hysteresis and domains of metal/oxide films. We intend to use Fe- and Co-based magnetic thin films as electrodes and liquid electrolytes that enable enhanced electric field effects and high ionic mobility at the magnet/electrolyte interface. The role of structural, compositional and microstructural variations occuring through electrochemical transformations will be analyzed and correlated with magnetic property changes. We expect to identify the key influencing factors and the conditions for enhanced reaction layer thickness and high reversibility of the magneto-ionic reactions. We will strive for a tunable Fe or Co layer with non-volatile behavior, where the magnetic state can be set by a moderate voltage and small initial current. The combination of such tunable top layers with bottom layers exhibiting perpendicular magnetic anisotropy promises to exponentiate the variability of magneto-ionic effects. Ideally, reversible magneto-ionic spin reorientation will be achieved within several nanometers.To track local magnetic changes during polarization within the electrolyte, an electrochemical cell compatible with Kerr microscopy will be developed. This in situ Kerr microscopy setup promises to resolve, for the first time, the local effect of magneto-ionic reactions on magnetic domains when using liquid electrolytes. Magneto-ionic effects in patterned structures will be investigated for voltage-tunable stray field landscapes and domain wall traps.
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会议论文
Kontrolle der magnetischen Eigenschaften ultradünner metallischer Schichten durch ein elektrisches Feld in einem Elektrolyten
国内基金
海外基金
多带隙可调电磁带隙结构材料的制备与机理研究
  • 批准号:
    50572085
  • 项目类别:
    面上项目
  • 资助金额:
    26.0万元
  • 批准年份:
    2005
  • 负责人:
    汪宏
  • 依托单位: