Skyrmions in antiferromagnetic and highly anisotropic environments
Skyrmions in antiferromagnetic and highly anisotropic environments
批准号:
403502758
负责人:
Professor Dr. Matthias Bode
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
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
中文摘要
在这个项目中,我们将利用自旋极化扫描隧道显微镜(SP-STM)的原子分辨率能力来(i)制备和直接成像反铁磁(AFM)薄膜中的skyrmion,(ii)研究尚未探索的强各向异性过渡金属氧化物(TMO)中的高度各向异性手性自旋结构和磁孤子,以及(iii)探测磁畴壁和skyrmions如何与电流相互作用。 为了实现这些目标,我们将以原子分辨率成像真实空间自旋结构,并研究外部刺激的影响,例如STM尖端施加的全局外部磁场或局部电场脉冲。此外,我们将研究单个分子或原子缺陷对磁性skyrmions的形成,大小,形状和流动性的影响。 具有铁磁交换相互作用的WP(i)- Skyrmions(FM-Sky)已经在实验和理论上得到了深入的研究。相反,在具有AFM交换的材料中的skyrmion(AFM-Sky),预计在没有任何skyrmion霍尔效应的情况下表现出更强的自旋扭矩,迄今为止仅在模型计算的框架内提出。 在合作与专家在DFT从基尔大学(海因策),我们将调查skyrmion形成AFM薄膜。除了具有横向AFM交换的薄膜,即所谓的“G型”反铁磁体,我们还将对分层反铁磁体进行实验,其中单个原子层耦合FM,但层间耦合是AFM。 一旦发现,我们将研究如何skyrmions可以产生,操纵,或由全球外部或本地STM诱导场湮灭。在与FZ Jülich(Lounis)的合作中,我们还将研究单个skyrmions的性质或它们之间的相互作用如何响应有意沉积的吸附原子或分子。 WP(二)-磁性Skyrmion系统调查到目前为止总是由二维薄膜,而各向同性的交换机制。最近,我们在重面心立方(001)表面上外延生长的一维TMO中发现了强各向异性的手征磁性结构。与FZ Jülich(Lezaic/Blügel)合作,我们将研究这些螺旋自旋结构的间接磁交换耦合。 为此,我们将研究磁结构如何响应外部磁场或温度升高。 此外,我们将图像的畴壁(孤子)在这些自旋螺旋的传播。 WP(iii)-电荷电流对磁skyrmions施加非常大的自旋扭矩。 我们将通过STM诱导的远程分子异构化研究,通过单个skyrmions研究电荷和自旋输运,并将结果与传统的域和域壁进行比较。 这种新技术允许以前所未有的分辨率询问单个缺陷的影响。
英文摘要
Within this project, we will make use of the atomic-resolution capabilities of spin-polarized scanning tunneling microscopy (SP-STM) to (i) prepare and directly image skyrmions in antiferromagnetic (AFM) films, (ii) to study highly anisotropic chiral spin structures and magnetic solitons in yet unexplored strongly anisotropic transition metal oxides (TMO), and (iii) to probe how magnetic domain walls and skyrmions interact with electric currents. Towards these goals, we will image the real-space spin structure with atomic resolution and study the impact of external stimuli, such as global external magnetic fields or local electric field pulses applied by the STM tip. Furthermore, we will investigate the effects of single molecular or atomic defects on the formation, size, shape, and mobility of magnetic skyrmions. WP(i) — Skyrmions with a ferromagnetic exchange interaction (FM-Sky) have already been intensively investigated both experimentally and theoretically. In contrast, skyrmions in materials with AFM exchange (AFM-Sky), which are predicted to exhibit an even stronger spin torque without any skyrmion Hall effect, have so far been only proposed within the framework of model calculations. In cooperation with experts in DFT from the University of Kiel (Heinze) we will investigate skyrmion formation in AFM thin films. In addition to films with lateral AFM exchange, so-called “G-type” antiferromagnets, we will also perform experiments on layered antiferromagnets where individual atomic layers couple FM but the inter-layer coupling is AFM. Once discovered we will investigate how skyrmions can be generated, manipulated, or annihilated by global external or local STM-induced fields. In cooperation with the FZ Jülich (Lounis) we will also study how the properties of single skyrmions or the interactions between them respond to intentionally deposited adatoms or molecules. WP(ii) — Magnetic skyrmion systems investigated so far always consisted of two-dimensional films with rather isotropic exchange mechanisms. Recently, we discovered strongly anisotropic chiral magnetic structures in one-dimensional TMOs epitaxially grown on heavy fcc(001) surfaces. In cooperation with FZ Jülich (Lezaic/Blügel) we will investigate the indirect magnetic exchange coupling responsible for these spiral spin structures. Towards this purpose, we will study how the magnetic structure responds to external magnetic fields or an increased temperature. Furthermore, we will image the propagation of domain walls (solitons) in these spin spirals. WP(iii) — Charge currents exert an extraordinary large spin torque on magnetic skyrmions. We will investigate charge and spin transport through single skyrmions by means of STM-induced remote molecule isomerization studies and compare the results to conventional domains and domain walls. This novel technique allows to interrogate the effects of single defects with unprecedented resolution.
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会议论文
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