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Quantum Communications using integrated photonic devices

Quantum Communications using integrated photonic devices
使用集成光子器件的量子通信
批准号:
2453312
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2020
资助国家:
英国
项目状态:
已结题
起止时间:
2020 至 --

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中文摘要
翻译
量子信息处理为传统技术提供了一种强大的替代方案。量子通信提供了从根本上安全的加密协议,并使量子态的分布式操作在计算、传感和模拟中的应用成为可能。集成光子器件是实现复杂线性光学电路的强大技术平台。该博士项目旨在进一步发展和了解基于集成光子器件的量子通信技术。有两个基本领域将是目标:第一,开发d维光子量子态用于量子通信和纠缠分布,第二,使用本地开发的用于多用户的量子节点,在芯片上实现与测量设备无关的量子密钥分发协议。此外,该项目将探索使用多芯光纤来稳定信号,以及基于单光子态的空间多路复用,使用量子灯笼方法进行自由空间多维量子态传输。PHD项目将嵌入现有的欧盟项目Square和量子通信中心,该项目旨在发展基于高维量子态分布的量子网络,以及量子通信中心,这是一个国家多机构倡议,旨在开发量子通信系统。这些正在进行的研究项目由布里斯托尔的QETLabs实验室主办,并得到多名博士后研究人员和学生的支持(4)。实验设施包括3个实验性的自动和半自动光子芯片设置,以及访问共享的光子设备,如激光、单光子探测器、功率计和光纤网络。有数十个光子芯片用于量子态的产生和分析,新的设备将在未来几年通过现有的拨款获得。
英文摘要
Quantum information processing offers a powerful alternative to conventional technologies. Quantum communications offer fundamentally secure encryption protocols and enable the distributed operation of quantum states for applications in computing, sensing and simulations. Integrated photonic devices are a robust technological platform for the realisation of complex linear optic circuits.This PhD project aims to further the development and understanding of quantum communication technologies based on integrated photonic devices. There are two fundamental areas that will be targeted: first the exploitation of d-dimensional photonic quantum states for quantum communication applications and entanglement distribution, and second the implementation of Measurement-Device-Independent QKD protocols on-chip using locally-developed quantum nodes for multiple users. Additionally, the project will explore the use of multi-core optical fibres for signal stabilisation, as well as free-space multi-dimensional quantum state transmission using a quantum lantern approach, based on space multiplexing of single photon states.The PhD project will be embedded in the existing EU project SQUARE for the development of quantum networks based on the distribution of high-dimensional quantum states, and the Quantum Communications HUB, a national multi-institutional initiative to develop quantum communications systems. These on-going research projects are hosted at Bristol in the QETLabs laboratories and are supported by multiple (4) postdoctoral researchers and students (4). The experimental facilities comprise 3 experimental automated and semi-automated photonic chip setups, as well as access to shared photonic equipment such as lasers, single photon detectors, power meters and fibre network. There are tens of copies of photonic chips used for quantum state generation and analysis, with new devices to be obtained through the existing grants in the coming years.
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