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An integrated semiconductor platform for the implementation and study of higher-order exceptional points

An integrated semiconductor platform for the implementation and study of higher-order exceptional points
用于实施和研究高阶异常点的集成半导体平台
批准号:
501151941
负责人:
Professor Dr. Sebastian Klembt
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
将开放波或量子系统的基本概念转移到高度集成的固态器件中,对于更深入地理解底层物理以及新技术和设备的创新都至关重要。近年来,非厄米系统成为人们关注的焦点,包括那些表现出奇偶时间对称性的系统。引起人们兴趣的主要原因是参数空间中所谓的异常点(EPs),它们是两个或多个能量特征值和相应特征态合并的奇异简并点。在一系列有趣的基本方面中,这些简并对于超灵敏传感器件具有巨大的潜力。从二阶EPs到n阶EPs更有可能,其中n个能量特征值和-态合并。这个跨学科的研究项目位于实验固态光学和理论非厄米光子之间的边界。Magdeburg小组将利用耦合模式理论和数值模拟来奠定基础并建立理论骨干,以获得适合(高阶)EPs的参数集,并评估模拟设备的传感潜力。w<s:1> rzburg集团将利用其在半导体外延和器件制造方面的专业知识,实现基于可扩展的iii - v族材料的定制ep器件。器件的制造和优化将与数值模拟密切相关,并以迭代的方式有效地执行。该项目的目标是开发一个强大且通用的集成半导体平台,该平台允许将EPs的概念与在参数空间中创建所谓的异常表面的机制相结合,并由此产生强大的EPs。利用大规模器件表征技术和激光扫描技术,我们将绘制实验参数空间,并在环形激光器件中实现与合适的母线波导耦合的二阶和三阶EPs。我们将使用复杂的光谱技术来表征制造的器件特性,展示系统对扰动响应的期望的n根缩放。使用人工散射体-光刻定义和移动-我们将探索这些可扩展设备的传感能力。在项目的后期阶段,我们将把注意力转向绘制EPs附近的能量面。在此过程中,我们将对高阶EPs周围尚未被很好理解的拓扑结构获得有价值的见解,这将把我们的研究与令人兴奋的拓扑光子学新领域联系起来。
英文摘要
The transfer of basic concepts of open wave or quantum systems to highly integrated solid-state devices is of paramount importance both for a deeper understanding of the underlying physics and for the innovation of new technologies and devices. In recent years, non-Hermitian systems came into focus including those exhibiting parity-time symmetry. The main reason for the rising interest are so-called exceptional points (EPs) in parameter space, which are exotic degeneracies at which two or more energy eigenvalues and the corresponding eigenstates coalesce. Among a range of interesting fundamental aspects, these degeneracies have great potential for ultrasensitive sensing devices. Potentially, even more so when going from second-order EPs to EPs of nth order, where n energy eigenvalues and -states coalesce. This interdisciplinary research project is positioned at the border between experimental solid-state optics and theoretical non-Hermitian photonics. The Magdeburg group will lay the groundwork and establish the theoretical backbone using coupled-mode theory and numerical simulations to obtain parameter sets suitable for (higher-order) EPs and to evaluate the sensing potential of simulated devices. The Würzburg group will use its expertise in semiconductor epitaxy and device fabrication to realize tailored EP-devices based on scaleable group-III-V materials. The device fabrication and optimization will be closely tied to the numerical simulations and performed efficiently in an iterative way. The goal of this project is to develop a robust and versatile integrated semiconductor platform that allows to combine the concept of EPs with the mechanism for the creation of so-called exceptional surfaces in parameter space and the resulting robust EPs. Using large scale device characterization techniques and laser scanning techniques we will map out the experimental parameter space and realize second- and third-order EPs in ring laser devices coupled to suitable bus waveguides. We will use sophisticated spectroscopic techniques to characterize the fabricated device properties, demonstrating the desired nth-root scaling of the systems response to perturbations. Using an artificial scatterer – both lithographically defined and mobile – we will explore the sensing capabilities of these scaleable devices. In a later stage of the project we will turn our attention to mapping the energy surfaces in the vicinity of the EPs. In doing so, we will get valuable insight into the yet not well understood topology around higher-order EPs, which will connect our research to the exciting new field of topological photonics.
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Bloch Oscillations and Zener Tunneling of Exciton Polariton Condensates in One- and Two-dimensional Lattices
  • 批准号:
    399153120
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    2018
  • 负责人:
    Professor Dr. Sebastian Klembt
  • 依托单位:
Electrically driven, topological exciton-polariton laser
  • 批准号:
    441074308
  • 项目类别:
    Research Grants
  • 资助金额:
    $0.0万
  • 财政年份:
    --
  • 负责人:
    Professor Dr. Sebastian Klembt
  • 依托单位:
国内基金
海外基金
层状半导体材料纳米结构中激子分离动力学研究
  • 批准号:
    22073022
  • 项目类别:
    面上项目
  • 资助金额:
    63.0万元
  • 批准年份:
    2020
  • 负责人:
    刘新风
  • 依托单位: