Optical circulation in a multimode optomechanical resonator
arXiv:1708.07792 · doi:10.1038/s41467-018-04202-y
Abstract
Optical circulators are important components of modern day communication technology. With their ability to route photons directionally, these nonreciprocal elements provide useful functionality in photonic circuits and offer prospects for fundamental research on information processing. Developing highly efficient optical circulators thus presents an important challenge, in particular to realize compact reconfigurable implementations that do not rely on a magnetic field bias to break reciprocity. We demonstrate optical circulation based on radiation pressure interactions in an on-chip multimode optomechanical system. We show that mechanically-mediated optical mode conversion in a silica microtoroid provides a synthetic gauge bias for light, which enables a 4-port circulator by exploiting tailored interference between appropriate light paths. We identify two sideband conditions under which ideal circulation is approached. This allows to experimentally demonstrate 10 dB isolation and 3 dB insertion loss in all relevant channels. We show the possibility of actively controlling the bandwidth, isolation ratio, noise performance and circulation direction, enabling ideal opportunities for reconfigurable integrated nanophotonic circuits.
References in corpus (9)
- Topological Photonics
- Optomechanically induced transparency
- Coherent optical wavelength conversion via cavity-optomechanics
- Non-Reciprocal Brillouin Scattering Induced Transparency
- Nonreciprocity and magnetic-free isolation based on optomechanical interactions
- Quantum optical circulator controlled by a single chirally coupled atom
- Reconfigurable optomechanical circulator and directional amplifier
- Mechanical On-Chip Microwave Circulator
- Graph-based analysis of nonreciprocity in coupled-mode systems
Cited by in corpus (48)
- Reconfigurable optomechanical circulator and directional amplifier
- Nonreciprocal Inter-band Brillouin Modulation
- Nonreciprocal control and cooling of phonon modes in an optomechanical system
- Magnetic-Free Silicon Nitride Integrated Optical Isolator
- Sagnac interference in integrated photonics for reflection mirrors, gyroscopes, filters, and wavelength interleavers
- Noise-Tolerant Optomechanical Entanglement via Synthetic Magnetism
- Synthetic gauge field in a single optomechanical resonator
- Realization of directional amplification in a microwave optomechanical device
- Nonreciprocal photon blockade via quadratic optomechanical coupling
- Nonreciprocity via nonlinearity and synthetic magnetism
- Topological phases and nonreciprocal edge states in non-Hermitian Floquet Insulators
- Reciprocity of thermal diffusion in time-modulated systems
- Nonreciprocal transport based on cavity Floquet modes in optomechanics
- Piezoelectric actuation for integrated photonics
- Nonlinear dynamics of weakly dissipative optomechanical systems
- Strong optical coupling through superfluid Brillouin lasing
- Perfect Optical Nonreciprocity in a Double-Cavity Optomechanical System
- Nonreciprocal and non-Hermitian material response inspired by semiconductor transistors
- The role of nonlinearities in topological protection: using magnetically coupled fidget spinners
- Chiral current circulation and symmetry in a trimer of oscillators
- Controllable generation of mechanical quadrature squeezing via dark-mode engineering in cavity optomechanics
- Enhanced optomechanical entanglement and cooling via dissipation engineering
- Optomechanically Induced Birefringence and Faraday Effect
- Amplifying Frequency Up-Converted Infrared Signals with a Molecular Optomechanical Cavity
- Nonreciprocal conversion between radio-frequency and optical photons with an optoelectromechanical system
- Thermal noise cancellation for optomechanically induced nonreciprocity in a whispering-gallery-mode microresonator
- Multimode interference induced optical nonreciprocity and routing in an optical microcavity
- Asynchronous Locking in Metamaterials of Fluids of Light and Sound
- Switchable bipartite and genuine tripartite entanglement via an optoelectromechanical interface
- Parity-dependent unidirectional and chiral photon transfer in reversed-dissipation cavity optomechanics
- Hexagonal boron nitride cavity optomechanics
- Broadband optical nonreciprocity via nonreciprocal band structure
- Tunable partial polarization beam splitter and optomechanically induced Faraday effect
- Low Noise Opto-Electro-Mechanical Modulator for RF-to-Optical Transduction in Quantum Communications
- Bidirectional optical non-reciprocity in a multi-mode cavity optomechanical system
- Nonclassical states of levitated macroscopic objects beyond the ground state
- Generation of stable Gaussian cluster states in optomechanical systems with multifrequency drives
- Non-reciprocal population dynamics in a quantum trimer
- Fully Directional Quantum-limited Phase-Preserving Amplifier
- Purely Quantum Nonreciprocity by Spatially Separated Transmission Scheme
- Multiterminal Nonreciprocal Routing in an Optomechanical Plaquette via Synthetic Magnetism
- Non-reciprocal frequency conversion and mode routing in a microresonator
- Routing thermal noise through quantum networks
- Nonequilibrium plasmon liquid in a Josephson junction chain
- Enhanced Cavity Optomechanics with Quantum-well Exciton Polaritons
- A photonic integrated circuits with reconfigurablenonreciprocal transmission and all-opticalfunctionalities
- Modelling spatio-temporal dynamics of chiral coupling of quantum emitters to light fields in nanophotonic structures
- Multiplexing Guided Optical and Acoustic Waves for Efficient Acousto-Optic Devices