O. Benson, F. Böhm, A. Dohms, N. Nikolay, B. Sontheimer, H. Abudayyeh, B. Lubotzky, R. Rapaport
{"title":"量子技术中单固态量子发射体的高效光子收集(会议报告)","authors":"O. Benson, F. Böhm, A. Dohms, N. Nikolay, B. Sontheimer, H. Abudayyeh, B. Lubotzky, R. Rapaport","doi":"10.1117/12.2516553","DOIUrl":null,"url":null,"abstract":"Optical quantum technology needs efficient sources for non-classical light. Solid-state emitters provide excellent mode purity, high brightness, and often also stable operation up to room temperature. At the same time the spin of individual impurities can be entangled with emitted photons. Nano-photonic structures can dramatically enhance the photon emission efficiency and thus the yield of quantum information processing tasks involving photons. One example is a node of a quantum repeater network. \nIn this presentation we address the issue of enhanced photon collection from optically active defects in the solid-state such as diamond [1] or two-dimensional material [2]. We briefly introduce the emitters and then describe recent experiments where we couple them to dielectric/plasmonic antennas [3] and to SiO2/Si light collecting structures [4]. \n\nReferences\n[1] “Fiber-Coupled Diamond Micro-Waveguides toward an Efficient Quantum Interface for Spin Defect Centers”, M. Fujiwara, O. Neitzke, T. Schroder, A. W. Schell, J. Wolters, J. Zheng, S. Mouradian, M. Almoktar, S. Takeuchi, D. Englund, and O. Benson, ACS Omega 2, 7194-7202 (2017)\n[2] “Photodynamics of quantum emitters in hexagonal boron nitride revealed\nby low-temperature spectroscopy“, B. Sontheimer, M. Braun, N. Nikolay, N. Sadzak, I. Aharonovich, and Oliver Benson, Phys. Rev B 96, 121202(R) (2017).\n[3] “Accurate placement of single nano particles on opaque conductive structures“, N. Nikolay, N. Sadzak, A. Dohms, B. Lubotzky, H. Abudayyeh, R. Rapaport, and O. Benson, Appl. Phys. Lett, accepted (2018); arXiv:1807.10605\n[4] “Fine-tuning of whispering gallery modes in on-chip silica microdisk resonators within a full spectral range“, R. Henze, C. Pyrlik, A. Thies, J.M. Ward, A. Wicht, O. Benson, Appl. Phys. Lett. 102, 041104 (2013).","PeriodicalId":199835,"journal":{"name":"Photonic and Phononic Properties of Engineered Nanostructures IX","volume":"60 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2019-03-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Efficient photon collection from single solid-state quantum emitters for quantum technology (Conference Presentation)\",\"authors\":\"O. Benson, F. Böhm, A. Dohms, N. Nikolay, B. Sontheimer, H. Abudayyeh, B. Lubotzky, R. Rapaport\",\"doi\":\"10.1117/12.2516553\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Optical quantum technology needs efficient sources for non-classical light. Solid-state emitters provide excellent mode purity, high brightness, and often also stable operation up to room temperature. At the same time the spin of individual impurities can be entangled with emitted photons. Nano-photonic structures can dramatically enhance the photon emission efficiency and thus the yield of quantum information processing tasks involving photons. One example is a node of a quantum repeater network. \\nIn this presentation we address the issue of enhanced photon collection from optically active defects in the solid-state such as diamond [1] or two-dimensional material [2]. We briefly introduce the emitters and then describe recent experiments where we couple them to dielectric/plasmonic antennas [3] and to SiO2/Si light collecting structures [4]. \\n\\nReferences\\n[1] “Fiber-Coupled Diamond Micro-Waveguides toward an Efficient Quantum Interface for Spin Defect Centers”, M. Fujiwara, O. Neitzke, T. Schroder, A. W. Schell, J. Wolters, J. Zheng, S. Mouradian, M. Almoktar, S. Takeuchi, D. Englund, and O. Benson, ACS Omega 2, 7194-7202 (2017)\\n[2] “Photodynamics of quantum emitters in hexagonal boron nitride revealed\\nby low-temperature spectroscopy“, B. Sontheimer, M. Braun, N. Nikolay, N. Sadzak, I. Aharonovich, and Oliver Benson, Phys. Rev B 96, 121202(R) (2017).\\n[3] “Accurate placement of single nano particles on opaque conductive structures“, N. Nikolay, N. Sadzak, A. Dohms, B. Lubotzky, H. Abudayyeh, R. Rapaport, and O. Benson, Appl. Phys. Lett, accepted (2018); arXiv:1807.10605\\n[4] “Fine-tuning of whispering gallery modes in on-chip silica microdisk resonators within a full spectral range“, R. Henze, C. Pyrlik, A. Thies, J.M. Ward, A. Wicht, O. Benson, Appl. Phys. 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引用次数: 0
摘要
光量子技术需要高效的非经典光源。固态发射器提供优异的模式纯度,高亮度,并且通常在室温下也稳定运行。同时,单个杂质的自旋可以与发射的光子纠缠在一起。纳米光子结构可以显著提高光子发射效率,从而提高涉及光子的量子信息处理任务的产出率。一个例子是量子中继网络的节点。在本报告中,我们讨论了从固态(如金刚石[1]或二维材料[2])的光学活性缺陷中增强光子收集的问题。我们简要介绍了发射器,然后描述了最近的实验,我们将它们耦合到介电/等离子体天线[3]和SiO2/Si光收集结构[4]。参考文献[1]M. Fujiwara, O. Neitzke, T. Schroder, A. W. Schell, J. Wolters, J. Zheng, S. Mouradian, M. Almoktar, S. Takeuchi, D. Englund, O. Benson,低温光谱揭示的六方氮化硼中量子发射体的光动力学[2],B. Sontheimer, M. Braun, N. Nikolay, N. Sadzak, I. Aharonovich, and Oliver Benson, Phys。[3][中国科学:地球科学版],2016,(5)(1)。]“单纳米粒子在不透明导电结构上的精确放置”,N. Nikolay, N. Sadzak, A. Dohms, B. Lubotzky, H. Abudayyeh, R. Rapaport, O. Benson,苹果。理论物理。左,接受(2018);[4]“全光谱范围内硅微盘谐振腔腔腔腔腔的精细调谐研究”,李晓明,李晓明,李晓明,李晓明。理论物理。Lett. 102, 041104(2013)。
Efficient photon collection from single solid-state quantum emitters for quantum technology (Conference Presentation)
Optical quantum technology needs efficient sources for non-classical light. Solid-state emitters provide excellent mode purity, high brightness, and often also stable operation up to room temperature. At the same time the spin of individual impurities can be entangled with emitted photons. Nano-photonic structures can dramatically enhance the photon emission efficiency and thus the yield of quantum information processing tasks involving photons. One example is a node of a quantum repeater network.
In this presentation we address the issue of enhanced photon collection from optically active defects in the solid-state such as diamond [1] or two-dimensional material [2]. We briefly introduce the emitters and then describe recent experiments where we couple them to dielectric/plasmonic antennas [3] and to SiO2/Si light collecting structures [4].
References
[1] “Fiber-Coupled Diamond Micro-Waveguides toward an Efficient Quantum Interface for Spin Defect Centers”, M. Fujiwara, O. Neitzke, T. Schroder, A. W. Schell, J. Wolters, J. Zheng, S. Mouradian, M. Almoktar, S. Takeuchi, D. Englund, and O. Benson, ACS Omega 2, 7194-7202 (2017)
[2] “Photodynamics of quantum emitters in hexagonal boron nitride revealed
by low-temperature spectroscopy“, B. Sontheimer, M. Braun, N. Nikolay, N. Sadzak, I. Aharonovich, and Oliver Benson, Phys. Rev B 96, 121202(R) (2017).
[3] “Accurate placement of single nano particles on opaque conductive structures“, N. Nikolay, N. Sadzak, A. Dohms, B. Lubotzky, H. Abudayyeh, R. Rapaport, and O. Benson, Appl. Phys. Lett, accepted (2018); arXiv:1807.10605
[4] “Fine-tuning of whispering gallery modes in on-chip silica microdisk resonators within a full spectral range“, R. Henze, C. Pyrlik, A. Thies, J.M. Ward, A. Wicht, O. Benson, Appl. Phys. Lett. 102, 041104 (2013).