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Bright sources of quantum light for efficient entanglement distribution

Bright sources of quantum light for efficient entanglement distribution
明亮的量子光源可实现有效的纠缠分布
批准号:
431487620
负责人:
Professor Dr. Jonathan J. Finley
金额:
$0.0万
依托单位国家:
德国
项目类别:
DIP Programme
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
人类目前正在经历一场重大的技术革命,量子物理中的微妙概念,如态叠加和纠缠,现在开始被用于重大新技术。在所有正在探索的“量子使能”技术中,基于光子的量子通信具有关键的社会意义,因为它促进了通信方之间的绝对安全的数据传输。与此同时,在新型半导体光子纳米材料的发展、对凝聚态系统中量子(自旋)自由度的新理解以及将量子光学工具箱中的技术应用于固态系统的可能性的推动下,最近基础科学方面的逐步变化的进步现在已经将其推向了最接近真实世界的应用。虽然已经进行了许多令人印象深刻的概念验证演示,但距离可伸缩性和光子损失仍然是阻碍光子驱动的量子计算机或网络发展的两个主要问题。使用量子中继器(QR)已经提出了避免光子损失的建议。然而,大多数QR协议的实现要求具有出色的写入/读出效率和超过毫秒的超长存储时间的高性能量子存储器的可用性。寻找一种同时促进高光子产生和相互作用率、提供长存储时间并且可扩展的物理系统仍然是阻碍进一步发展的重大科学挑战。最近,新型多光子量子态-所谓的团簇或图态-被提出作为分布式量子技术的全新资源。这些状态由包含许多光子的光脉冲组成,这些光子在高度纠缠的状态下制备,每个光子的量子状态与其他光子错综复杂地联系在一起。与单个分离的光子不同,团簇态具有内在的高度冗余度;由于光子不可避免地会丢失,因此仍然可以通过拆分团簇态并将部分发送给每个通信方来共享量子纠缠。通过这种方式,如果一些光子到达通信方,纠缠仍然可以分布。这种新颖的方法完全绕过了对高性能量子存储器的需求,而高性能量子存储器是迄今为止阻碍高速纠缠分发可靠技术发展的主要障碍之一。这个DIP项目汇集了来自以色列和德国三个领先机构的物理和电子工程系的五名科学家,他们在实验和理论方面都有工作。参与的研究人员将设计和测试用于高速纠缠分配的新协议,并实现高性能、光学可寻址和电可调的基于半导体的自旋系统。
英文摘要
Humankind is currently experiencing a major technological revolution in which the subtle concepts of quantum physics, such as state-superposition and entanglement are now starting to be used for major new technologies. Amongst all the “quantum enabled” technologies being explored, photon-based quantum communication is of key-societal relevance since it facilitates absolutely secure data transmission between communicating parties. At the same time, recent stepchanging advances in fundamental science have now pushed it closest to real-world application, driven by progress in the development of novel semiconductor photonic nanomaterials, new understandings of quantum (spin) degrees of freedom in condensed matter systems and the possibility to apply techniques from the quantum optics toolbox to solidstate systems. While a number of impressive proof-of-concept demonstrations have already been made, distance scalability and photon-loss remain two of the primary issues that stop the development of photon powered quantum computers or networks. Suggestions to circumvent photon loss have been made using quantum repeaters (QR). However, the implementation of most QR protocols calls for the availability of performant quantum memories with exceptional write-in / read-out efficiencies and very long memory times exceeding milliseconds. Finding one physical system that simultaneously facilitates high photon-generation and -interaction rates, offers long memory times and, moreover, is scalable remains a major scientific challenge that has inhibited further progress.Recently, new types of multi-photon quantum states – so called cluster or graph states have been proposed as an entirely new resource for distributed quantum technologies. These states consist of a pulse of light containing many photons prepared in a highly-entangled state for which the quantum state of each photon is intricately linked to the others. Unlike single, separated photons, cluster states have an inbuilt high degree of redundancy; as photons are inevitably lost, quantum entanglement can still be shared among communicating parties by splitting cluster states and sending parts to each of the communicating parties. In this way, providing that some of the photons arrive at the communicating parties, entanglement can still be distributed. This kind of novel approach completely circumvents the need for highly performant quantum memories, one of the major obstacles that has hindered the development of reliable technologies for high-rate entanglement distribution to date.This DIP project brings together five scientists from three leading institutions in Israel and Germany in departments of Physics and Electronic Engineering, working in both experiment and theory. The participating researchers will design and test new protocols for high-rate entanglement distribution and realize highly performant, optically addressable and electrically tunable semiconductor-based spin-systems incorporated (...)
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