Nonreciprocity and magnetic-free isolation based on optomechanical interactions
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Andrea Alù | Ewold Verhagen | Mohammad-Ali Miri | M. Miri | E. Verhagen | Freek Ruesink | Freek Ruesink | A. Alú
[1] J. Teufel,et al. Mechanically Mediated Microwave Frequency Conversion in the Quantum Regime. , 2015, Physical review letters.
[2] Yi Xuan,et al. An All-Silicon Passive Optical Diode , 2012, Science.
[3] Kerry J. Vahala,et al. Phonon laser action in a tunable, two-level system , 2009, CLEO/QELS: 2010 Laser Science to Photonic Applications.
[4] M. Aspelmeyer,et al. Laser cooling of a nanomechanical oscillator into its quantum ground state , 2011, Nature.
[5] Gaurav Bahl,et al. Non-reciprocal Brillouin scattering induced transparency , 2014, Nature Physics.
[6] Andrea Alù,et al. Giant non-reciprocity at the subwavelength scale using angular momentum-biased metamaterials , 2013, Nature Communications.
[7] Zongfu Yu,et al. Photonic Aharonov-Bohm effect based on dynamic modulation. , 2012, Physical review letters.
[8] Michal Lipson,et al. Non-reciprocal phase shift induced by an effective magnetic flux for light , 2014, Nature Photonics.
[9] Tetsuya Mizumoto,et al. Magneto-optical isolator with silicon waveguides fabricated by direct bonding , 2008 .
[10] S. Raghu,et al. Possible realization of directional optical waveguides in photonic crystals with broken time-reversal symmetry. , 2008, Physical review letters.
[11] S. Fan,et al. Optical isolation based on nonreciprocal phase shift induced by interband photonic transitions , 2009 .
[12] T. Fulop,et al. Reciprocity in quantum, electromagnetic and other wave scattering , 2011, 1108.5743.
[13] Kerry Vahala,et al. Cavity opto-mechanics. , 2007, Optics express.
[14] K. Vahala,et al. Radiation-pressure induced mechanical oscillation of an optical microcavity , 2005, EQEC '05. European Quantum Electronics Conference, 2005..
[15] Shanhui Fan,et al. Temporal coupled-mode theory and the presence of non-orthogonal modes in lossless multimode cavities , 2004, IEEE Journal of Quantum Electronics.
[16] Oskar Painter,et al. Coherent optical wavelength conversion via cavity optomechanics , 2012, Nature Communications.
[17] Hailin Wang,et al. Optomechanical Dark Mode , 2012, Science.
[18] C. L. Hogan,et al. The ferromagnetic Faraday effect at microwave frequencies and its applications: The microwave gyrator , 1952 .
[19] F. Marquardt,et al. Topological Phases of Sound and Light , 2014, 1409.5375.
[20] Leonardo Ranzani,et al. Graph-based analysis of nonreciprocity in coupled-mode systems , 2014, 1406.4922.
[21] Guang-Can Guo,et al. Brillouin-scattering-induced transparency and non-reciprocal light storage , 2014, Nature Communications.
[22] B. Eggleton,et al. Design for broadband on-chip isolator using Stimulated Brillouin Scattering in dispersion-engineered chalcogenide waveguides. , 2012, Optics express.
[23] Shanhui Fan,et al. Photonic Aharonov–Bohm effect in photon–phonon interactions , 2014, Nature Communications.
[24] Xun-Wei Xu,et al. Optical nonreciprocity and optomechanical circulator in three-mode optomechanical systems , 2015, 1502.07482.
[25] J. Teufel,et al. Sideband cooling of micromechanical motion to the quantum ground state , 2011, Nature.
[26] S. Deléglise,et al. Quantum-coherent coupling of a mechanical oscillator to an optical cavity mode , 2011, Nature.
[27] Xiang Guo,et al. On-Chip Strong Coupling and Efficient Frequency Conversion between Telecom and Visible Optical Modes. , 2016, Physical review letters.
[28] Cale M. Gentry,et al. Dark state lasers , 2013, CLEO: 2013.
[29] T. J. Kippenberg,et al. Ultra-high-Q toroid microcavity on a chip , 2003, Nature.
[30] O. Painter,et al. Optomechanical creation of magnetic fields for photons on a lattice , 2015, 1502.07646.
[31] Optomechanically induced non-reciprocity in microring resonators. , 2011, Optics express.
[32] P. Zoller,et al. Continuous mode cooling and phonon routers for phononic quantum networks , 2012, 1205.7008.
[33] G. Arfken. Mathematical Methods for Physicists , 1967 .
[34] O. Arcizet,et al. Resolved Sideband Cooling of a Micromechanical Oscillator , 2007, 0709.4036.
[35] R. J. Schoelkopf,et al. Reconfigurable Josephson Circulator/Directional Amplifier , 2015, 1503.00209.
[36] Tal Carmon,et al. Temporal behavior of radiation-pressure-induced vibrations of an optical microcavity phonon mode. , 2005, Physical review letters.
[37] Zongfu Yu,et al. Complete optical isolation created by indirect interband photonic transitions , 2009 .
[38] Jürgen Volz,et al. Nanophotonic Optical Isolator Controlled by the Internal State of Cold Atoms , 2015 .
[39] Mika A. Sillanpää,et al. Microwave amplification with nanomechanical resonators , 2013, ISSCC.
[40] Andrea Alù,et al. Angular-Momentum-Biased Nanorings To Realize Magnetic-Free Integrated Optical Isolation , 2014 .
[41] X. Zou,et al. Experimental realization of optomechanically induced non-reciprocity , 2016, Nature Photonics.
[42] A. Metelmann,et al. Nonreciprocal Photon Transmission and Amplification via Reservoir Engineering , 2015, 1502.07274.
[43] Jie Luo,et al. Generalized non-reciprocity in an optomechanical circuit via synthetic magnetism and reservoir engineering , 2016, Nature Physics.
[44] Michal Lipson,et al. Optical nonreciprocity in optomechanical structures. , 2009, Physical review letters.
[45] Tobias J. Kippenberg,et al. Optomechanically Induced Transparency , 2010, Science.
[46] Andrea Alù,et al. Magnetic-free non-reciprocity and isolation based on parametrically modulated coupled-resonator loops , 2014, Nature Physics.