Spin currents and domain wall dynamics based on the spin Seebeck effect
Spin currents and domain wall dynamics based on the spin Seebeck effect
批准号:
198571487
负责人:
Professor Dr. Mathias Kläui
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2011
资助国家:
德国
项目状态:
已结题
起止时间:
2010-12-31 至 2020-12-31
中文摘要
最近发现的自旋塞贝克效应是指在铁磁材料中由温度梯度引起的自旋电流和自旋积累。这种效应为自旋热电子应用开辟了新的前景,将自旋自由度与热性质相结合。在一个联合的理论和实验的努力,申请人将调查自旋电流的铁磁体,诱导的热梯度。我们将使用自旋模型模拟,以及一个国家的最先进的微磁框架,其中包括热力学方面,并比较模拟结果与他们的实验对应。局部激光(脉冲)加热应用于磁性纳米和微观结构将被用来定制的温度梯度。为了检测自旋积累,我们将使用逆自旋霍尔效应并设计结构以确定其符号,位置和起源。下一步我们将通过模拟和测量畴壁的退钉扎和传播特性来研究热自旋流对畴壁的影响。目标包括更深入地了解的起源和性质的热诱导自旋电流和扭矩,这些自旋电流施加在畴壁的测定。
英文摘要
The recently found spin Seebeck effect refers to a spin current and spin accumulation induced by a temperature gradient in a ferromagnetic material. This effect opens new perspectives for spin caloritronic applications, combining the spin degrees of freedom with caloric properties. In a joint theoretical and experimental effort the applicants will investigate spin currents in ferromagnets, induced by thermal gradients. We will use spin model simulations as well as a state-of-the-art micromagnetic framework, which includes thermodynamic aspects, and compare the simulation results with their experimental counterpart. Localized laser (pulse) heating applied to magnetic nano- and microstructures will be used to tailor the temperature gradients. To detect a spin accumulation, we will use the inverse spin Hall effect and engineer the structures to determine its sign, position and origin. In a next step we will investigate the inuence of the thermal spin currents on confined domain walls by simulating and measuring the depinning and propagation properties of the walls. Objectives include a deeper understanding of the origin and the nature of the thermally induced spin currents and a determination of the torques that these spin currents exert on the domain walls.
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