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Tailoring spin and magnetism in systems of reduced dimensionality

Tailoring spin and magnetism in systems of reduced dimensionality
剪裁降维系统中的自旋和磁性
批准号:
252665003
负责人:
Dr. Benedikt Scharf
金额:
$0.0万
依托单位:
依托单位国家:
德国
项目类别:
Research Fellowships
财政年份:
2014
资助国家:
德国
项目状态:
已结题
起止时间:
2013-12-31 至 2014-12-31

项目摘要

项目成果

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中文摘要
翻译
与传统的块状材料不同,它为研究和预测不寻常的基本现象以及实现新的应用提供了有趣的可能性。最近,自旋电子学和石墨烯的研究证明了在降维系统中可行的两个引人注目的例子,它们也分别获得了2007年和2010年的诺贝尔物理学奖。石墨烯由于其优异的传输和光学特性已经引起了人们的极大兴趣,这使其成为纳米级电子学和光电子学中可能应用的有吸引力的候选者。另一方面,在过去的十年里,自旋电子学的进步使得利用磁阻效应的金属结构的计算机硬盘驱动器的容量增加了1000倍。然而,这只是冰山一角。在广泛的材料及其纳米结构中控制自旋和磁性具有更广泛的影响潜力。事实上,石墨烯的实验突破表明它特别适合自旋电子学。对于特定的应用,石墨烯自旋电子学可以显著优于现有的传统同类产品。因此,这里提出的研究旨在从理论上阐明选定的降维系统中的新现象,如石墨烯,量子阱(QWs)和量子点(QDs):在第一个项目中,我们将研究基于石墨烯的系统的磁光特性。我们的初步工作表明,单层石墨烯的光学和磁光响应可以被衬底大大改变。因此,我们将系统地研究不同衬底对石墨烯基结构(如双层石墨烯、纳米带和纳米片)中磁光和自旋光电导率的作用,并为克尔效应发展相关理论。在一个密切相关的项目中,我们还将研究这种结构中等离子体激元和声子之间的耦合及其对其光学性质的影响。基于我们之前对HgTe/CdTe量子阱的研究,我们将研究边缘和表面状态对拓扑绝缘体(磁)光电导率的影响。我们将在有限磁场中寻找反转带和正常带结构之间交叉的特征。最后,我们将开发量子点中磁极化子形成的微观模型,并为布法罗大学正在进行的几个实验提供理论输入,包括对特殊热增强磁性的展望。与HgTe/CdTe量子点项目类似,我们还将探索量子点中能带反转的可能性及其光学特征,这些特征可以揭示相关的非常规自旋和磁有序。
英文摘要
A departure from conventional, bulk-like materials offers intriguing possibilities to study and predict unusual fundamental phenomena as well as to realize novel applications. Two striking examples of what could be feasible in systems of reduced dimensionality have recently been demonstrated by the research on spintronics and graphene, also recognized by the 2007 and 2010 Nobel Prizes in Physics, respectively.Graphene has already attracted immense interest due to its excellent transport and optical properties, which make it an attractive candidate for possible applications in nanoscale electronics and optoelectronics. On the other hand, advances in spintronics have, over the past decade, enabled a 1,000-fold increase in the capacity of computer hard drives in metal-based structures that utilize magneto-resistive effects. However, this represents only the tip of the iceberg. The control of spin and magnetism in a wide class of materials and their nanostructures has the potential for a much broader impact. In fact, experimental breakthroughs in graphene suggest that it is particularly suitable for spintronics. For specific applications, graphene spintronics could significantly outperform the existing conventional counterparts.The research proposed here therefore seeks to theoretically elucidate novel phenomena in selected systems of reduced dimensionality, such as graphene, quantum wells (QWs), and quantum dots (QDs):In the first project, we will examine the magneto-optical properties of graphene-based systems. Our preliminary work suggests that the optical and magneto-optical response of monolayer graphene can be drastically modified by the substrate. Therefore we will systematically study the role of different substrates on magneto-optical and spin-optical conductivities in graphene-based structures, such as bilayer graphene, nanoribbons, and nanodiscs, as well as develop a related theory for the Kerr effect.In a closely related project, we will also study the coupling between plasmons and phonons in such structures and its effect on their optical properties.Building on our previous work on HgTe/CdTe QWs, we will study the effects of edge and surface states on the (magneto-)optical conductivity in topological insulators. We will look for signatures of the crossover between the inverted and normal band structures at a finite magnetic field.Finally, we will develop a microscopic model for the formation of magnetic polarons in QDs and provide theoretical input for several ongoing experiments conducted at the University at Buffalo, including the prospect for a peculiar thermally-enhanced magnetism. In analogy to the project on HgTe/CdTe QWs, we will also explore the possibility of band inversion in QDs and its optical signatures that could reveal related unconventional spin and magnetic ordering.
期刊论文(2)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1103/physrevb.91.144505
发表时间: 2014-09
期刊: Physical Review B
影响因子: 3.7
作者: [B. Scharf;I. vZuti'c]
通讯作者: B. Scharf;I. vZuti'c
Probing topological transitions in HgTe/CdTe quantum wells by magneto-optical measurements
通过磁光测量探测 HgTe/CdTe 量子阱中的拓扑转变
DOI: 10.1103/physrevb.91.235433
发表时间: 2015
期刊: Physical Review B
影响因子: 3.7
作者: [B. Scharf, A. Matos-Abiague, I. Žutić, J. Fabian]
通讯作者: J. Fabian
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