Integrated sources of photon quantum states based on nonlinear optics

被引:0
作者
Lucia Caspani
Chunle Xiong
Benjamin J Eggleton
Daniele Bajoni
Marco Liscidini
Matteo Galli
Roberto Morandotti
David J Moss
机构
[1] Institute of Photonics,Department of Physics
[2] University of Strathclyde,Dipartimento di Ingegneria Industriale e dell’Informazione
[3] Institute of Photonics and Quantum Sciences,Dipartimento di Fisica
[4] Heriot-Watt University,undefined
[5] Centre for Ultrahigh bandwidth Devices for Optical Systems (CUDOS),undefined
[6] Institute of Photonics and Optical Science (IPOS),undefined
[7] School of Physics,undefined
[8] University of Sydney,undefined
[9] Università di Pavia,undefined
[10] Università di Pavia,undefined
[11] INRS-EMT,undefined
[12] Institute of Fundamental and Frontier Sciences,undefined
[13] University of Electronic Science and Technology of China,undefined
[14] National Research University of Information Technologies,undefined
[15] Mechanics and Optics,undefined
[16] Center for Microphotonics,undefined
[17] Swinburne University of Technology,undefined
来源
Light: Science & Applications | 2017年 / 6卷
关键词
entanglement; integrated optics; nonlinear optics; photon pairs; quantum optics; quantum states;
D O I
暂无
中图分类号
学科分类号
摘要
The ability to generate complex optical photon states involving entanglement between multiple optical modes is not only critical to advancing our understanding of quantum mechanics but will play a key role in generating many applications in quantum technologies. These include quantum communications, computation, imaging, microscopy and many other novel technologies that are constantly being proposed. However, approaches to generating parallel multiple, customisable bi- and multi-entangled quantum bits (qubits) on a chip are still in the early stages of development. Here, we review recent advances in the realisation of integrated sources of photonic quantum states, focusing on approaches based on nonlinear optics that are compatible with contemporary optical fibre telecommunications and quantum memory platforms as well as with chip-scale semiconductor technology. These new and exciting platforms hold the promise of compact, low-cost, scalable and practical implementations of sources for the generation and manipulation of complex quantum optical states on a chip, which will play a major role in bringing quantum technologies out of the laboratory and into the real world.
引用
收藏
页码:e17100 / e17100
相关论文
共 777 条
[41]  
Marshall GD(2015)Pernice WHP. Waveguide integrated superconducting single-photon detectors with high internal quantum efficiency at telecom wavelengths Sci Rep 5 10941-287
[42]  
Politi A(2016)Generation and manipulation of entangled photons on silicon chips Nanophotonics 5 440-200
[43]  
Matthews JCF(2016)On-chip continuous-variable quantum entanglement Nanophotonics 5 469-1246
[44]  
Dekker P(2016)CMOS-compatible photonic devices for single-photon generation Nanophotonics 5 427-884
[45]  
Ams M(2016)Multifrequency sources of quantum correlated photon pairs on-chip: a path toward integrated Quantum Frequency Combs Nanophotonics 5 351-2208
[46]  
Meany T(2016)Recent advances on integrated quantum communications J Opt 18 083002-2597
[47]  
Gräfe M(2016)Photon pair generation from compact silicon microring resonators using microwatt-level pump powers Opt Express 24 3313-913
[48]  
Heilmann R(2014)Integrated nonlinear photonics: emerging applications and ongoing challenges [Invited] J Opt Soc Am B 31 3193-5191
[49]  
Perez-Leija A(2012)On the genesis and evolution of integrated quantum optics Laser Photonics Rev 6 115-176
[50]  
Gross S(1991)Quantum cryptography based on Bell’s theorem Phys Rev Lett 67 661-1180