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Optical Source and Detectors for Characterizing Silicon Photonic Devices for Classical and Quantum Communications and Sensing

Optical Source and Detectors for Characterizing Silicon Photonic Devices for Classical and Quantum Communications and Sensing
用于表征经典和量子通信及传感的硅光子器件的光源和探测器
批准号:
RTI-2019-00750
负责人:
Chrostowski, Lukas
金额:
$10.93万
依托单位国家:
加拿大
项目类别:
Research Tools and Instruments
财政年份:
2018
资助国家:
加拿大
项目状态:
已结题
起止时间:
2018-01-01 至 2019-12-31

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中文摘要
翻译
该申请建议购买可调谐激光器和相关的光学探测器,以表征申请人正在开发的使用光学波长接近1.3 μ m的硅芯片的新型光子器件。目前迫切需要激光和一组探测器来支持最近获得的量子通信、数据中心光通信和生物传感器三个主要研究项目拨款。此外,量子通信项目还需要两个单光子探测器。***迄今为止,硅光子学的大多数研究都集中在1.55 μ m附近的波长上,即c波段。选择这个频段用于长距离光通信主要是由于掺铒光纤放大器的可用性。由于该行业可用的组件过多(光放大器,滤波器,光纤,调制器,探测器和激光器),硅光子学研究人员自然会开发这种标准波长的组件。然而,有些应用场合其他波长更合适。第一种是短距离光通信,不需要光放大器。我们不受限于1.55µm,而是可以在1.31µm的o波段工作,其中数字脉冲的色散最小。因此,用于数据中心的硅光子系统正在使用1.31 μ m实现,我们的目标是开发我们在UBC制造和测试的组件库。***对于量子光学,我们寻求最适合开发按需高纯度单光子源的波长。硅中存在几种可以在1.3µm附近发光的缺陷态(如g中心)。g中心有许多共同的特性,使得金刚石中的氮空位可以作为单光子的量子发射体。我们的目标是开发单光子源和单光子探测器,并建立一个在硅上实现的量子密钥分发(QKD)系统原型。这将需要使用可调谐激光器和探测器来表征光子晶体谐振器,然后使用单光子探测器系统来表征添加到光子晶体腔中的缺陷的单光子发射特性。后一步骤也将涉及相同的可调谐激光源,用于共振激发。***第三个应用是生物传感器。我们的生物传感器研究目前正在1.55µm波长上实现商业化。水介质(血液,唾液)中的传感器在1.3µm下的性能比在1.55µm下的性能好10倍,因为水的吸水性降低了。我们的目标是研究具有更高灵敏度的1.3µm波长的系统。该项目与其他两个应用程序具有相似的设备设计和测试要求,即开发光纤耦合,分离器和滤波器等组件库,所有这些都需要使用可调谐激光器和探测器系统以及光矢量网络分析仪进行表征
英文摘要
This application proposes to purchase a tunable laser and associated optical detectors needed to characterize novel photonic devices that the applicants are developing using silicon chips operating at optical wavelengths near 1.3 µm. The laser and a set of detectors are urgently needed to support three recently awarded major research project grants in quantum communication, optical communications in data centres, and biosensors. In addition, two single photon detectors are required for the quantum communications project. *** Most research in silicon photonics to date has been focused on wavelengths near 1.55 µm, known as the C-band. This band was chosen for long distance optical telecommunications primarily due to the availability of erbium-doped fibre amplifiers. Due to the plethora of components available for this industry (optical amplifiers, filters, optical fibres, modulators, detectors, and lasers), it was natural for silicon photonics researchers to develop components at this standard wavelength. However, there are applications where other wavelengths are more suitable. The first is short-reach optical communications where optical amplifiers are not required. We are not constrained to 1.55 µm and instead can operate at 1.31 µm, the O-band, where the dispersion of digital pulses is minimized. Thus, silicon photonic systems for data centres are being implemented using 1.31 µm, and we aim to develop a library of components that we fabricate and test at UBC. *** For quantum optics, we seek a wavelength that is most suitable for developing on-demand high-purity single photon sources. There exist several defect states in silicon that can emit light near 1.3 µm (e.g., G-centre). The G-centre shares many of the properties that make nitrogen vacancies in diamond useful as quantum emitters for single photons. Our objective is to develop single photon sources and single photon detectors, and to build a prototype quantum key distribution (QKD) system implemented in silicon. This will require characterizing photonic crystal resonators using a tunable laser and detector, then characterizing the single photon emission properties of the defects added to the photonic crystal cavities using a single photon detector system. The latter step will also involve the same tunable laser source, for resonant excitation. *** The third application is for biosensors. Our research in biosensors is currently being commercialized at a wavelength of 1.55 µm. Sensors in aqueous media (blood, saliva) will perform 10X better at 1.3 µm than at 1.55 µm due to reduced water absorption. Our aim is to research systems at a 1.3 µm wavelength with improved sensitivity. This project shares similar device design and test requirements as the two other applications, namely the development of a library of components such as fibre coupling, splitters, and filters, all which need to be characterized using a tunable laser and detector system, and with an Optical Vector Network Analyzer.**
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Silicon Photonics for Quantum Computing
  • 批准号:
    RGPIN-2021-03163
  • 项目类别:
    Discovery Grants Program - Individual
  • 资助金额:
    $5.54万
  • 财政年份:
    2022
  • 负责人:
    Chrostowski, Lukas
  • 依托单位:
Phase I low-cost lasers and assembly for high-performance silicon photonic transceivers and sensors
  • 批准号:
    560548-2021
  • 项目类别:
    Idea to Innovation
  • 资助金额:
    $9.11万
  • 财政年份:
    2021
  • 负责人:
    Chrostowski, Lukas
  • 依托单位:
Scalable Neuromorphic Photonic Circuits
  • 批准号:
    542588-2019
  • 项目类别:
    Collaborative Research and Development Grants
  • 资助金额:
    $26.23万
  • 财政年份:
    2021
  • 负责人:
    Chrostowski, Lukas
  • 依托单位:
NSERC CREATE in Quantum Computing
  • 批准号:
    543245-2020
  • 项目类别:
    Collaborative Research and Training Experience
  • 资助金额:
    $20.86万
  • 财政年份:
    2021
  • 负责人:
    Chrostowski, Lukas
  • 依托单位:
国内基金
海外基金
数学之源书(Source book in mathematics)的翻译与出版
  • 批准号:
    11826405
  • 项目类别:
    数学天元基金项目
  • 资助金额:
    3.0万元
  • 批准年份:
    2018
  • 负责人:
    程晓亮
  • 依托单位: