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RAISE-EQuIP: Integrated Silicon Photonics Platforms for Scalable Quantum Systems

RAISE-EQuIP: Integrated Silicon Photonics Platforms for Scalable Quantum Systems
RAISE-EQuIP:用于可扩展量子系统的集成硅光子平台
批准号:
1842712
负责人:
Marek Osinski
金额:
$75.0万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-10-01 至 2023-12-31

项目摘要

项目成果

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中文摘要
翻译
量子信息处理(QIP)依赖于利用光和物质的量子特性来提取、处理和处理信息以及传输和检测信息。QIP有望用于安全和扩大多方量子计算,以解决目前计算机无法处理的计算问题,例如用于材料设计和药物发现的大规模分子模拟;或者它可以将用于超精密测量的分布式量子传感器网络与生物成像、重力测量和位置导航定时的应用连接起来。在QIP的总体格局中,量子通信扮演着特殊的角色,因为它可以利用量子密码学的概念来实现安全的数据传输网络,其中传输的安全性由量子物理的基本定律保证。在过去的十年里,与QIP用光子的产生、操作、存储、传播和检测相关的科学和技术取得了巨大的进步。这些进展大部分集中在开发满足QIP在单光子水平上相当严格的要求的单个器件组件上。将这些单独的组件集成到一个具有优化操作的完整量子通信系统中需要一种跨学科的方法。要超越单独的分立组件,就需要一种新的范例,将各种组件集成到一块芯片上。这项研究的主要愿景是通过实施基于硅的集成平台并探索量子网络中量子设备的相互作用来推动量子技术工程的前沿。除了新的科学和技术的进步,一个主要的成果将是在跨学科的环境中使从事这个项目的本科生和研究生接触到广泛的主题。这一丰富的教学/研究经验是培养未来高技能劳动力的平台。这个变革性的项目将在一个可用于实现大规模量子通信网络的硅光子学平台中集成用于量子信息处理的单光子和纠缠光子的产生、操作、传播和检测的新型设备。这是一个高度跨学科的项目,汇集了材料科学和工程、半导体制造、加工和器件、超导器件物理、经典非线性和量子光学以及光通信方面的专业知识,以解决可扩展集成量子通信平台的开发和实现的技术挑战。这项研究包括设计和制造单光子和纠缠光子对源、单光子探测器和操作光子的集成通道,以及为在可行的量子通信协议中实现而表征光子态的量子性质的实验。所提出的集成平台在量子通信系统网络中的实现以及大规模系统的开发和实现中都具有很好的应用前景。在拟议的研究中将使用的单个组件和设备相当新颖,并且可以使用标准的半导体设备处理技术进行可扩展的集成。超导量子点发光二极管的工作原理是半导体中的库珀对带间跃迁,它将被开发成能够产生单光子和双光子状态的超导量子点发光二极管。对于单光子探测,将开发行波超导纳米条单光子探测器,并将其集成到设备平台中。按需电驱动的光子源以及单光子探测器将与集成在硅衬底上的无源氮化硅波导一起使用,以研究量子信息处理实施的各种场景,例如路径纠缠光子的表征、多量子比特纠缠、量子状态层析,并可能作为量子通信协议的概念验证。这一奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Quantum information processing (QIP) relies on the extraction, processing and manipulation, as well as transmission and detection of information by exploiting quantum properties of light and matter. QIP is expected to be used to secure and scale-up multiparty quantum computations to tackle computational problems that currently remain outside the reach of computers, such as large-scale molecular simulations for materials design and drug discovery; or it can connect a network of distributed quantum sensors for ultraprecise measurements with applications to biological imaging, gravitometry, and position navigation-timing. In a general landscape of QIP, quantum communications plays a special role, because it can be used to implement a secure data transmission network, leveraging the concept of quantum cryptography, where the security of transmission is guaranteed by the basic laws of quantum physics. Over the last decade, there has been tremendous progress in science and technology related to the generation, manipulation, storage, propagation, and detection of photons for QIP. Much of this progress has been focused on developing individual device components that satisfy the rather stringent requirements of QIP at the single-photon level. Integrating these individual components into a complete quantum-communication system with optimized operation requires an interdisciplinary approach. The move beyond individual discrete components necessitates a new paradigm that will integrate various components on a single chip. The main vision of this research is to push the frontiers of engineering in quantum technologies by implementing a silicon-based integrated platform and exploring the interactions of quantum devices in a quantum network. In addition to the advancement of the new science and technology, a major outcome will be the exposure of undergraduate and graduate students working on this project to a broad range of topics in an interdisciplinary environment. This broad teaching/research experience is a platform to train the highly skilled workforce of the future.This transformative project will integrate novel devices for the generation, manipulation, propagation, and detection of single and entangled photons for quantum information processing in a silicon photonics platform that can be used to implement a large-scale quantum communication network. This is a highly interdisciplinary project that brings together expertise in materials science and engineering; semiconductor fabrication, processing, and devices; superconducting device physics; classical nonlinear and quantum optics; and optical communications to solve technical challenges for the development and realization of a scalable integrated quantum communication platform. The research covers both design and fabrication of single-photon and entangled photon pair sources, single-photon detectors, and integrated channels to manipulate photons, as well as experiments to characterize the quantum nature of the photonic states for implementation in viable quantum communication protocols. The proposed integrated platform is very promising for implementation in a quantum communication system network, as well as in development and realization of large-scale systems. The individual components and devices that will be used in the proposed research are quite novel and amenable to scalable integration using standard semiconductor device processing technologies. Superconducting quantum-dot light-emitting diodes, whose operation is based on Cooper-pair interband transition in a semiconductor, will be developed to generate single- and pair-photon states. For single-photon detection, traveling-wave superconducting nanostripe single-photon detectors will be developed and integrated in the device platform. The on-demand electrically driven photon sources, as well as single-photon detectors, will be used along with passive silicon nitride waveguides, all integrated on the silicon substrate, to study various scenarios for quantum information processing implementations, such as characterization of path-entangled photons, multi-qubit entanglement, quantum state tomography, and, potentially, as a proof-of-concept for quantum communication protocols.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(6)
专著(0)
科研奖励(0)
会议论文
DOI: 10.1117/12.2654772
发表时间: 2023
期刊: Proceedings of SPIE
影响因子: --
作者: [Djamen Tchapda, Loic H., Bal, Anindya, Nazib, Sami A., Hutchins-Delgado, Troy A., Lee, Hosuk, Reymatias, Mark V., Sommer, Erika M., Komissarov, Ivan, Nogan, John, Lu, Tzu-Ming]
通讯作者: Lu, Tzu-Ming
DOI: 10.1109/sum53465.2022.9858324
发表时间: 2022
期刊: 2022 IEEE Photonics Society Summer Topicals Meeting Series (SUM
影响因子: --
作者: [Tchapda, Loic H., Nazib, Sami A., Hutchins-Delgado, Troy A., Sommer, Erika M., Lu, Tzu-Ming, Komissarov, Ivan, Sobolewski, Roman, Osinski, Marek]
通讯作者: Osinski, Marek
Modeling of Traveling-Wave Superconducting-Nanowire Single-Photon Detectors
行波超导纳米线单光子探测器的建模
DOI: 10.1364/quantum.2022.qw3b.2
发表时间: 2022
期刊: Quantum 2.0 Conference and Exhibition
影响因子: --
作者: [Djamen Tchapda, Loïc H., Hutchins-Delgado, Troy A., Nazib, Sami A., Lee, Hosuk, Lu, Tzu-Ming, Nogan, John, Komissarov, Ivan, Sobolewski, Roman, Mafi, Arash, Osiński, Marek]
通讯作者: Osiński, Marek
Silicon Quantum Photonic Integrated Circuits Comprising Superconducting Nanostripe Single-Photon Detectors
包含超导纳米带单光子探测器的硅量子光子集成电路
DOI: 10.1109/rapid51799.2021.9521395
发表时间: 2021
期刊: Proceedings of the 2021 IEEE Research and Applications of Photonics in Defense Conference (RAPID
影响因子: --
作者: [Nazib, Sami A., Hutchins-Delgado, Troy A., Lee, Hosuk, Reymatias, Mark V., Tchapda, Loic H., Chen, Genyu, Sommer, Erika M., Peirce, Petra M., Utzinger, Benjamin C., Sharma, Aadit]
通讯作者: Sharma, Aadit
共 6 条
    QLCI-CG: Scalable Integrated Platforms for Quantum Information Processing
    • 批准号:
      1937155
    • 项目类别:
      Standard Grant
    • 资助金额:
      $14.94万
    • 财政年份:
      2019
    • 负责人:
      Marek Osinski
    • 依托单位:
    REU Site: Nanophotonics at the University of New Mexico
    • 批准号:
      1063142
    • 项目类别:
      Standard Grant
    • 资助金额:
      $34.5万
    • 财政年份:
      2011
    • 负责人:
      Marek Osinski
    • 依托单位:
    Miniature Dysprosium-Based Monitors of Thermal Neutron Exposure History
    • 批准号:
      1016352
    • 项目类别:
      Standard Grant
    • 资助金额:
      $10.0万
    • 财政年份:
      2010
    • 负责人:
      Marek Osinski
    • 依托单位:
    Injection-Locked Unidirectional Semiconductor Ring Lasers? A Novel Class of Ultrafast Transmitters
    • 批准号:
      0901868
    • 项目类别:
      Standard Grant
    • 资助金额:
      $35.05万
    • 财政年份:
      2009
    • 负责人:
      Marek Osinski
    • 依托单位:
    海外基金