Reflectivity ferromagnetic resonance (RFMR) for layer-resolved dynamic study of multi-layered systems
Reflectivity ferromagnetic resonance (RFMR) for layer-resolved dynamic study of multi-layered systems
批准号:
2606404
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2021
资助国家:
英国
项目状态:
未结题
起止时间:
2021 至 --
中文摘要
项目描述:磁性多层系统是定制材料的一个典型例子,它们的功能可以通过先进的界面和层工程精确控制。这种调谐导致它们在广泛的领域中使用,包括手性磁性材料,合成反铁磁体和自旋电子器件中的skyrmion。磁性多层膜为超快功能器件的发展提供了多种机会,然而,一种有效的方法来确定整个堆叠的动态特性作为深度的函数,迄今为止仍然难以捉摸。最近,我们提出了一种新的技术--反射铁磁共振(RFMR)技术,该技术为全面研究磁性多层膜系统中的磁化动力学提供了一条途径,该技术建立在我们利用X射线磁性圆二色性(XMCD)和X射线探测铁磁共振(XFMR)研究磁性材料系统中元素特定磁化动力学的广泛和公认的工作基础上。在这个项目中,结合软X射线共振反射率,我们扩展这些技术,以获得作为深度的函数的磁化动力学。该项目旨在充分利用Diamond的设施、独特的技术机会和光束线支持,以及RF和光谱学专业知识,在Diamond全面建立RFMR技术。在准备该项目时,为了证明RFMR的巨大潜力,我们测量了[CoFeB/MgO/Ta]4多层中磁化动力学的深度依赖性,这对其他技术来说是“不可见的”,暴露了新的动态行为。第一步,学生将培养和探索合成反铁磁体,旨在解开磁性skyrmion动力学。该项目是与钻石光源,特别是Gerrit货车der Laan教授小组的联合项目。该项目与EPSRC的研究领域“凝聚态物质:磁性和磁性材料”和“自旋电子学”相一致。
英文摘要
Project description:Magnetic multilayer systems are a prime example of tailored materials in which their functionalities can be precisely controlled through advanced interface and layer engineering. This tuneability has led to their use across a wide range of topical fields, including skyrmions in chiral magnetic materials, synthetic antiferromagnets, and spintronic devices. Magnetic multilayers offer diverse opportunities for the development of ultrafast functional devices, however, an efficient method for determining the dynamic properties as a function of depth throughout such stacks has so far remained elusive. Very recently, we presented a new technique, reflectometry ferromagnetic resonance (RFMR), which provides an avenue to fully explore the magnetization dynamics in magnetic multilayer systems.The RFMR technique builds on our extensive and well recognized work of using x-ray magnetic circular dichroism (XMCD) and x-ray detected ferromagnetic resonance (XFMR) to explore the element-specific magnetization dynamics in magnetic material systems. In this project, in combination with soft x-ray resonant reflectivity, we extend these techniques to gain access to the magnetization dynamics as a function of depth. For the first time, this allows for the selective probing of the magnetization dynamics in the 'hidden' layers, inaccessible to other ferromagnetic resonance methods.The Project aims at fully establishing the RFMR technique at Diamond, making optimal use of the facilities at Diamond, its unique technical opportunities and beamline support, as well as the RF and spectroscopy expertise. In preparation for the project, and to demonstrate the large potential of RFMR in general, we measured the depth-dependence of the magnetization dynamics in a [CoFeB/MgO/Ta]4 multilayer, which is 'invisible' to other techniques, exposing novel dynamic behaviour. In a first step, the student will grow and explore synthetic antiferromagnets, aiming at the unravelling of the magnetic skyrmion dynamics.This project is a joint project with the Diamond Light Source, and in particular with the group of Prof Gerrit van der Laan.This project aligns with EPSRC's research areas "Condensed Matter: Magnetism and Magnetic Materials" and "Spintronics".
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专著(0)
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会议论文
国内基金
海外基金
磁性薄膜和磁性纳米结构中的自旋动力学研究
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批准号:11174131
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项目类别:面上项目
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资助金额:60.0万元
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批准年份:2011
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负责人:游彪
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依托单位: