Highly sensitive temperature sensing via quadratic optomechanical coupling
arXiv:2501.03586 · doi:10.1103/1f8d-44ym
Abstract
The effective frequency of a mechanical resonator can be tuned via the spring effect induced by quadratic optomechanical (QOM) coupling, and both spontaneous symmetry breaking and anti-parity-time phase transition were predicted in the QOM systems. Here, we show that the mechanical susceptibility can be enhanced significantly by driving the QOM system with a strong external optical field, and divergence will happen as the driving strength approaches the critical point (CP) for spontaneous symmetry breaking. Based on the CP, we propose a highly sensitive temperature sensor with a mechanical resonator quadratically coupled to an optical mode. We find that the sensitivity of the temperature sensor can be enhanced by several orders of magnitude as the driving strength approaches the CP, and the sensitivity of the temperature sensor remains high in the low-temperature limit. Our work provides an effective way to realize highly sensitive temperature sensing at ultra-low temperature in the QOM systems.
10 pages, 4 figures
References in corpus (93)
- Cavity Optomechanics
- Strong dispersive coupling of a high finesse cavity to a micromechanical membrane
- Opportunities for mesoscopics in thermometry and refrigeration: Physics and applications
- A microchip optomechanical accelerometer
- Preparation and Detection of a Mechanical Resonator Near the Ground State of Motion
- Nanomechanical motion measured with precision beyond the standard quantum limit
- A hybrid on-chip opto-nanomechanical transducer for ultra-sensitive force measurements
- Strong and Tunable Nonlinear Optomechanical Coupling in a Low-Loss System
- Dispersive optomechanics: a membrane inside a cavity
- Real-time optimal quantum control of mechanical motion at room temperature
- Cavity Optomechanical Magnetometer
- Sub-nanoscale Temperature, Magnetic Field and Pressure sensing with Spin Centers in 2D hexagonal Boron Nitride
- Enhanced quantum nonlinearities in a two mode optomechanical system
- Ultrasensitive torque detection with an optically levitated nanorotor
- Cooling and squeezing via quadratic optomechanical coupling
- Tunable Cavity Optomechanics with Ultracold Atoms
- High-sensitivity optical monitoring of a micro-mechanical resonator with a quantum-limited optomechanical sensor
- Cavity optomechanical transduction sensing of single molecules
- Ultralow-Noise SiN Trampoline Resonators for Sensing and Optomechanics
- Thermometry in the quantum regime: Recent theoretical progress
- Force sensitivity of multilayer graphene optomechanical devices
- Optically Measuring Force near the Standard Quantum Limit
- Cavity cooling of a levitated nanosphere by coherent scattering
- Nonlinear dynamics and millikelvin cavity-cooling of levitated nanoparticles
- Precision ultrasound sensing on a chip
- Electromagnetically Induced Transparency from Two Phonon Processes in Quadratically Coupled Membranes
- High sensitivity optomechanical reference accelerometer over 10 kHz
- On chip, high-sensitivity thermal sensor based on high-Q polydimethylsiloxane-coated microresonator
- Non-linear optomechanical measurement of mechanical motion
- Ultra-Sensitive Chip-Based Photonic Temperature Sensor Using Ring Resonator Structures
- Precision measurement of the environmental temperature by tunable double optomechanically induced transparency with a squeezed field
- Robust stationary mechanical squeezing in a kicked quadratic optomechanical system
- Exceptional point enhances sensitivity of optomechanical mass sensors
- Review of cavity optomechanical cooling
- Using polarons for sub-nK quantum non-demolition thermometry in a Bose-Einstein condensate
- Optomechanical mass spectrometry
- Position-squared coupling in a tunable photonic crystal optomechanical cavity
- Standard Quantum Limit for Probing Mechanical Energy Quantization
- Low-temperature thermometry can be enhanced by strong coupling
- Quantum Measurement of Phonon Shot Noise
- Self-organized synchronization of phonon lasers
- Approaching the motional ground state of a 10 kg object
- Nanocavity optomechanical torque magnetometry and radiofrequency susceptometry
- Multimode optomechanical dynamics in a cavity with avoided crossings
- Probing the temperature of cold many-body quantum systems
- Optomechanical Raman-Ratio Thermometry
- Nonreciprocal photon blockade via quadratic optomechanical coupling
- Ultrasensitive nano-optomechanical force sensor at dilution temperatures
- Single-photon quadratic optomechanics
- Nonlinear optomechanics in the stationary regime
- Macroscopic tunneling of a membrane in an optomechanical double-well potential
- Tunable linear and quadratic optomechanical coupling for a tilted membrane within an optical cavity: theory and experiment
- Photonic Josephson effect, phase transitions, and chaos in optomechanical systems
- Single-Photon-Triggered Quantum Phase Transition
- Circuit analog of quadratic optomechanics
- Magnon-Phonon Quantum Correlation Thermometry
- Enhanced precision bound of low-temperature quantum thermometry via dynamical control
- Ferromagnetic resonance assisted optomechanical magnetometer
- Optimal Probes for Global Quantum Thermometry
- Multimode strong-coupling quantum optomechanics
- Realizing a Circuit Analog of an Optomechanical System with Longitudinally Coupled Superconducting Resonators
- Towards Replacing Resistance Thermometry with Photonic Thermometry
- Phonon counting thermometry of an ultracoherent membrane resonator near its motional ground state
- Selectable linear or quadratic coupling in an optomechanical system
- Enhanced nonlinear optomechanics in a coupled-mode photonic crystal device
- Practical applications of quantum sensing: a simple method to enhance sensitivity of Nitrogen-Vacancy-based temperature sensors
- Nonlinear optomechanical paddle nanocavities
- Quantum mechanical study of a generic quadratically coupled optomechanical system
- Low-temperature quantum thermometry boosted by coherence generation
- Mechanical oscillator thermometry in the nonlinear optomechanical regime
- Approaching Heisenberg-scalable thermometry with built-in robustness against noise
- Multi-spin probes for thermometry in the strong-coupling regime
- Mass sensing by detecting the quadrature of a coupled light field
- Quantum sensing of temperature close to absolute zero in a Bose-Einstein condensate
- Cubic singularities in binary linear electromechanical oscillators
- Squeezing-enhanced quantum sensing with quadratic optomechanics
- Quadratic optomechanical cooling of a cavity-levitated nanosphere
- Symmetry-breaking oscillations in membrane optomechanics
- Quantum sensing of open systems: Estimation of damping constants and temperature
- Anti-parity-time symmetry hidden in a damping linear resonator
- Detecting Acoustic Blackbody Radiation with an Optomechanical Antenna
- Calibrated quantum thermometry in cavity optomechanics
- Harnessing coherence generation for precision single- and two-qubit quantum thermometry
- Photon-assisted entanglement and squeezing generation and decoherence suppression via a quadratic optomechanical coupling
- Dynamic stabilization of an optomechanical oscillator
- Phononic Josephson oscillation and self-trapping with two-phonon exchange interaction
- All-optical quantum simulation of ultrastrong optomechanics
- Dissipative structures in optomechanical cavities
- Mixing thermal coherent states for precision and range enhancement in quantum thermometry
- Vibration induced transparency: Simulating an optomechanical system via the cavity QED setup with a movable atom
- Quantum Simulation of Tunable and Ultrastrong Mixed-Optomechanics
- Temperature-heat uncertainty relation in nonequilibrium quantum thermometry
- Thermometry with a Dissipative Heavy Impurity