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Construction and manipulation of topological insulators from III-V heterostructures

Construction and manipulation of topological insulators from III-V heterostructures
III-V 异质结构拓扑绝缘体的构建和操作
批准号:
530143959
负责人:
Professor Dr. Sven Höfling
金额:
$0.0万
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
--
资助国家:
德国
项目状态:
未结题
起止时间:

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中文摘要
翻译
拓扑绝缘体(TIs)是一种新的物质状态,其特点是具有绝缘体,但表面或边缘状态是无间隙和反向传播的。在众多TI材料中,基于III-V材料的复合量子阱(QWs)异质结构,即InAs/GaSb,结合III-V半导体先进的外延和器件制造工艺,提供了前所未有的器件功能。这些复合QW异质结构是特别有吸引力的二维(2D) ti,这要归功于它们丰富的相图,可以通过带和对称工程以及外部电场的应用来访问,从而允许以独特的灵活性修改它们的性质。然而,尽管进行了许多研究,在这种材料体系的拓扑绝缘相中,螺旋边缘状态的完全令人信服的证明仍然是难以捉摸的。因此,该项目建议首先克服在这些材料中观察所谓的量子自旋霍尔效应(QSHE)的主要障碍,例如这些不对称结构中固有的小能隙。此外,自二维ti的发现以来,在不同的凝聚态体系中也发现了各种各样的三维ti和半金属态。然而,观察到这些拓扑状态的材料不允许其能带结构或拓扑性质的任何连续可调性。因此,一个具有许多可调参数的灵活平台仍然是非常需要的,既可以更好地探测它们的物理性质,也可以考虑实际应用。通过控制InAs/ gasb基超晶格中的晶体对称性和多能带反转,可以创建所有已知的拓扑量子态,如3D ti, Dirac和Weyl SMs,以及具有前所未有丰富相图的所谓高阶ti (HOTIs)。与“低阶”情况不同,hoti的边缘状态比系统的边缘状态至少小两个维度。因此,本项目旨在一方面为基于qw和III-V超晶格的二维和三维拓扑状态的研究创造一个灵活的平台,另一方面在优化生长和工艺过程的结构中证明和控制QSHE。第一个目标是实现技术突破:双门控高性能场效应器件的控制,允许通过外部电压而不是结构变化来观察琐碎的拓扑相变。第二个目标是观察三层量子阱结构中边缘态的量子化传导。第三个目标是验证3D InAs/Ga(in)Sb超晶格中存在的各种拓扑状态,例如3D ti, Dirac和Weyl SMs以及3D hoti。
英文摘要
Topological insulators (TIs) are new state of matter, characterized by an insulating bulk but gapless and counter-propagating surface or edge states. Among the vast amount of TI materials, composite quantum wells (QWs) heterostructures based on III-V materials, i.e., InAs/GaSb, provide unprecedented device functionality in combination with the advanced epitaxial and device fabrication routines of III-V semiconductors. These composite QW heterostructures are particularly attractive two-dimensional (2D) TIs thanks to their rich phase diagram accessible by band and symmetry engineering and by the application of external electric fields, allowing the modification of their properties with unique flexibility. However, despite many investigations, a fully convincing demonstration of helical edge states in the topological insulating phase in this material system is still elusive. This project therefore proposes first to overcome the main obstacles to the observation of the so-called quantum spin Hall effect (QSHE) in these materials, such as the small energy gap inherent in these asymmetric structures. Moreover, since the discovery of 2D TIs, a large variety of three-dimensional (3D) TIs and semi metallic (SM) states have also been identified in different condensed matter systems. However, the materials in which these topological states have been observed do not allow any continuous tunability of their band structure or topological properties. Therefore, a flexible platform with many adjustable parameters is still very much in demand, both to better probe their physical properties and to consider practical applications. By controlling crystal symmetries and multiple band inversions in InAs/GaSb-based superlattices, it becomes possible to create all known topological quantum states such as 3D TIs, Dirac and Weyl SMs, but also so-called higher order TIs (HOTIs) with a phase diagram of unprecedented richness. Unlike the "lower order" case, edge states of HOTIs are at least two dimensions smaller than that of the system. The project therefore aims on the one hand to create a flexible platform for the study of 2D and 3D topological states based on QWs and III-V superlattices and on the other hand to evidence and control the QSHE in structures of optimized growth and technological processes. The first objective is the realization of a technological breakthrough: the control of dual gated high-performance field effect devices, allowing the observation of the trivial-to-topological phase transition by external voltage rather than structural change. The second objective is to observe quantized conduction of edge states in three-layer QW structures. The third objective is to validate various topological states existing in 3D InAs/Ga(In)Sb superlattices, such as 3D TIs, Dirac and Weyl SMs, and 3D HOTIs.
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  • 批准号:
    403555215
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    2018
  • 负责人:
    Professor Dr. Sven Höfling
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  • 批准号:
    429901270
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Professor Dr. Sven Höfling
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Collective quantum transport and light-assisted superconductivity
  • 批准号:
    449424711
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Professor Dr. Sven Höfling
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  • 批准号:
    10804007
  • 项目类别:
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  • 资助金额:
    17.0万元
  • 批准年份:
    2008
  • 负责人:
    金光日
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