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Dong XL, Li PB, Liu T, Nori F. Unconventional Quantum Sound-Matter Interactions in Spin-Optomechanical-Crystal Hybrid Systems. PHYSICAL REVIEW LETTERS 2021; 126:203601. [PMID: 34110200 DOI: 10.1103/physrevlett.126.203601] [Citation(s) in RCA: 9] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/08/2020] [Accepted: 04/16/2021] [Indexed: 06/12/2023]
Abstract
We predict a set of unusual quantum acoustic phenomena resulting from sound-matter interactions in a fully tunable solid-state platform in which an array of solid-state spins in diamond are coupled to quantized acoustic waves in a one-dimensional optomechanical crystal. We find that, by using a spatially varying laser drive that introduces a position-dependent phase in the optomechanical interaction, the mechanical band structure can be tuned in situ, consequently leading to unconventional quantum sound-matter interactions. We show that quasichiral sound-matter interactions can occur, with tunable ranges from bidirectional to quasiunidirectional, when the spins are resonant with the bands. When the solid-state spin frequency lies within the acoustic band gap, we demonstrate the emergence of an exotic polariton bound state that can mediate long-range tunable, odd-neighbor, and complex spin-spin interactions. This work expands the present exploration of quantum phononics and can have wide applications in quantum simulations and quantum information processing.
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Affiliation(s)
- Xing-Liang Dong
- MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, Shaanxi Province Key Laboratory of Quantum Information and Quantum Optoelectronic Devices, School of Physics, Xi'an Jiaotong University, Xi'an 710049, China
| | - Peng-Bo Li
- MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter, Shaanxi Province Key Laboratory of Quantum Information and Quantum Optoelectronic Devices, School of Physics, Xi'an Jiaotong University, Xi'an 710049, China
- Theoretical Quantum Physics Laboratory, RIKEN Cluster for Pioneering Research, Wako-shi, Saitama 351-0198, Japan
| | - Tao Liu
- Theoretical Quantum Physics Laboratory, RIKEN Cluster for Pioneering Research, Wako-shi, Saitama 351-0198, Japan
- School of Physics and Optoelectronics, South China University of Technology, Guangzhou 510640, China
| | - Franco Nori
- Theoretical Quantum Physics Laboratory, RIKEN Cluster for Pioneering Research, Wako-shi, Saitama 351-0198, Japan
- Department of Physics, The University of Michigan, Ann Arbor, Michigan 48109-1040, USA
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Doster J, Hoenl S, Lorenz H, Paulitschke P, Weig EM. Collective dynamics of strain-coupled nanomechanical pillar resonators. Nat Commun 2019; 10:5246. [PMID: 31748570 PMCID: PMC6868224 DOI: 10.1038/s41467-019-13309-9] [Citation(s) in RCA: 6] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/07/2019] [Accepted: 10/30/2019] [Indexed: 11/09/2022] Open
Abstract
Semiconductur nano- and micropillars represent a promising platform for hybrid nanodevices. Their ability to couple to a broad variety of nanomechanical, acoustic, charge, spin, excitonic, polaritonic, or electromagnetic excitations is utilized in fields as diverse as force sensing or optoelectronics. In order to fully exploit the potential of these versatile systems e.g. for metamaterials, synchronization or topologically protected devices an intrinsic coupling mechanism between individual pillars needs to be established. This can be accomplished by taking advantage of the strain field induced by the flexural modes of the pillars. Here, we demonstrate strain-induced, strong coupling between two adjacent nanomechanical pillar resonators. Both mode hybridization and the formation of an avoided level crossing in the response of the nanopillar pair are experimentally observed. The described coupling mechanism is readily scalable, enabling hybrid nanomechanical resonator networks for the investigation of a broad range of collective dynamical phenomena.
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Affiliation(s)
- J Doster
- Department of Physics, University of Konstanz, Universitätsstrasse 10, 78457, Konstanz, Germany
| | - S Hoenl
- Department of Physics, University of Konstanz, Universitätsstrasse 10, 78457, Konstanz, Germany.,IBM Research - Zurich, Säumerstrasse 4, CH-8803, Rüschlikon, Switzerland
| | - H Lorenz
- Fakultät für Physik and Center for NanoScience (CeNS), Ludwig-Maximilians-Universität, Geschwister-Scholl-Platz 1, 80539, München, Germany
| | - P Paulitschke
- Fakultät für Physik and Center for NanoScience (CeNS), Ludwig-Maximilians-Universität, Geschwister-Scholl-Platz 1, 80539, München, Germany
| | - E M Weig
- Department of Physics, University of Konstanz, Universitätsstrasse 10, 78457, Konstanz, Germany.
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Delgoffe A, Miranda A, Rigal B, Lyasota A, Rudra A, Dwir B, Kapon E. Tilted-potential photonic crystal cavities for integrated quantum photonics. OPTICS EXPRESS 2019; 27:21822-21833. [PMID: 31510252 DOI: 10.1364/oe.27.021822] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Received: 04/08/2019] [Accepted: 06/28/2019] [Indexed: 06/10/2023]
Abstract
We propose and investigate a new type of photonic crystal (PhC) cavity for integrated quantum photonics, which provides tailored optical modes with both confined and extended spatial components. The structures consist of elongated PhC cavities in which the effective index of refraction is varied quasi-linearly along their axis, implemented by systematic lateral shifts of the PhC holes. The confined modes have approximately Airy-function envelopes, exhibiting single peaks and extended tails, which is useful for optimizing single photon extraction and transmission in integrated quantum photonic devices. The measured spectrally resolved near-field patterns of such devices show the expected spatial and resonance wavelength behavior, in agreement with numerical simulations of the Airy-Bloch modes. The effects of fabrication-induced disorder on the mode features are also analyzed and discussed. Selective excitation of specific Airy-Bloch modes using integrated, site-controlled quantum dots as localized light sources is demonstrated. Based on the tilted-potential cavity, multiple-QD single photon emitters exploiting wavelength division multiplexing are proposed.
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Yüce E, Lian J, Sokolov S, Bertolotti J, Combrié S, Lehoucq G, De Rossi A, Mosk AP. Adaptive Control of Necklace States in a Photonic Crystal Waveguide. ACS PHOTONICS 2018; 5:3984-3988. [PMID: 30357007 PMCID: PMC6195811 DOI: 10.1021/acsphotonics.8b01038] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/27/2018] [Indexed: 05/28/2023]
Abstract
Resonant cavities with high quality factor and small mode volume provide crucial enhancement of light-matter interactions in nanophotonic devices that transport and process classical and quantum information. The production of functional circuits containing many such cavities remains a major challenge, as inevitable imperfections in the fabrication detune the cavities, which strongly affects functionality such as transmission. In photonic crystal waveguides, intrinsic disorder gives rise to high-Q localized resonances through Anderson localization; however their location and resonance frequencies are completely random, which hampers functionality. We present an adaptive holographic method to gain reversible control on these randomly localized modes by locally modifying the refractive index. We show that our method can dynamically form or break highly transmitting necklace states, which is an essential step toward photonic-crystal-based quantum networks and signal processing circuits, as well as slow light applications and fundamental physics.
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Affiliation(s)
- Emre Yüce
- Complex
Photonic Systems (COPS), MESA+ Institute for Nanotechnology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands
- Programmable
Photonics Group, The Center for Solar Energy Research and Applications
(GÜNAM), Department of Physics, Middle
East Technical University, 06800 Ankara, Turkey
| | - Jin Lian
- Complex
Photonic Systems (COPS), MESA+ Institute for Nanotechnology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands
- Debye
Institute for Nanomaterials Science, Utrecht
University, PO Box 80000, 3508 TA Utrecht, The Netherlands
| | - Sergei Sokolov
- Complex
Photonic Systems (COPS), MESA+ Institute for Nanotechnology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands
- Debye
Institute for Nanomaterials Science, Utrecht
University, PO Box 80000, 3508 TA Utrecht, The Netherlands
| | - Jacopo Bertolotti
- Physics
and Astronomy Department, University of
Exeter, Stocker Road, Exeter EX4
4QL, United Kingdom
| | - Sylvain Combrié
- Thales
Research and Technology, Route Départementale 128, 91767 Palaiseau, France
| | - Gaëlle Lehoucq
- Thales
Research and Technology, Route Départementale 128, 91767 Palaiseau, France
| | - Alfredo De Rossi
- Thales
Research and Technology, Route Départementale 128, 91767 Palaiseau, France
| | - Allard P. Mosk
- Complex
Photonic Systems (COPS), MESA+ Institute for Nanotechnology, University of Twente, P.O. Box 217, 7500 AE Enschede, The Netherlands
- Debye
Institute for Nanomaterials Science, Utrecht
University, PO Box 80000, 3508 TA Utrecht, The Netherlands
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Sokolov S, Lian J, Combrié S, De Rossi A, Mosk AP. Measurement of the linear thermo-optical coefficient of Ga 0.51In 0.49P using photonic crystal nanocavities. APPLIED OPTICS 2017; 56:3219-3222. [PMID: 28414384 DOI: 10.1364/ao.56.003219] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/07/2023]
Abstract
Ga0.51In0.49P is a promising candidate for thermally tunable nanophotonic devices due to its low thermal conductivity. In this work we study its thermo-optical response. We obtain the linear thermo-optical coefficient dn/dT=2.0±0.3·10-4 K-1 by investigating the transmission properties of a single mode-gap photonic crystal nanocavity.
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