On-chip thermometry for microwave optomechanics implemented in a nuclear demagnetization cryostat
arXiv:1903.04992 · doi:10.1103/PhysRevApplied.12.044066
Abstract
We report on microwave optomechanics measurements performed on a nuclear adiabatic demagnetization cryostat, whose temperature is determined by accurate thermometry from below 500K to about 1Kelvin. We describe a method for accessing the on-chip temperature, building on the blue-detuned parametric instability and a standard microwave setup. The capabilities and sensitivity of both the experimental arrangement and the developed technique are demonstrated with a very weakly coupled silicon-nitride doubly-clamped beam mode of about 4MHz and a niobium on-chip cavity resonating around 6GHz. We report on an unstable intrinsic driving force in the coupled microwave-mechanical system acting on the mechanics that appears below typically 100mK. The origin of this phenomenon remains unknown, and deserves theoretical input. It prevents us from performing reliable experiments below typically 10-30mK; however no evidence of thermal decoupling is observed, and we propose that the same features should be present in all devices sharing the microwave technology, at different levels of strengths. We further demonstrate empirically how most of the unstable feature can be annihilated, and speculate how the mechanism could be linked to atomic-scale two level systems. The described microwave/microkelvin facility is part of the EMP platform, and shall be used for further experiments within and below the millikelvin range.
14 pages with appendix; plus Erratum 17, 049901 (2022)
References in corpus (18)
- Sideband Cooling Micromechanical Motion to the Quantum Ground State
- Entangled massive mechanical oscillators
- Nonreciprocal Photon Transmission and Amplification via Reservoir Engineering
- Nanomechanical motion measured with precision beyond the standard quantum limit
- State Transfer Between a Mechanical Oscillator and Microwave Fields in the Quantum Regime
- Optomechanical coupling between a multilayer graphene mechanical resonator and a superconducting microwave cavity
- Harnessing electro-optic correlations in an efficient mechanical converter
- Multimode circuit optomechanics near the quantum limit
- Mechanical On-Chip Microwave Circulator
- Microwave response of vortices in superconducting thin films of Re and Al
- A semi-empirical model for two-level system noise in superconducting microresonators
- Creating and Verifying a Quantum Superposition in a Micro-optomechanical System
- Observation and interpretation of motional sideband asymmetry in a quantum electro-mechanical device
- Frequency and phase noise of ultra-high Q silicon nitride nanomechanical resonators
- Probing the quantum coherence of a nanomechanical resonator using a superconducting qubit: I. Echo scheme
- Microscopic nanomechanical dissipation in gallium arsenide resonators
- Two-Level System Damping in a Quasi-One-Dimensional Optomechanical Resonator
- Measuring frequency fluctuations in nonlinear nanomechanical resonators
Cited by in corpus (19)
- Mesoscopic physics of nanomechanical systems
- Ultrasensitive nano-optomechanical force sensor at dilution temperatures
- A macroscopic object passively cooled into its quantum ground state of motion: beyond single-mode cooling
- Prospects for observing gravitational forces between nonclassical mechanical oscillators
- Mechanical oscillator thermometry in the nonlinear optomechanical regime
- Beyond linear coupling in microwave optomechanics
- High-Q silicon nitride drum resonators strongly coupled to gates
- Electric circuit model of microwave optomechanics
- Membrane-in-the-middle optomechanics with a soft-clamped membrane at milliKelvin temperatures
- Fast feedback control of mechanical motion using circuit optomechanics
- Microwave single-tone optomechanics in the classical regime
- Mesoscopic Quantum Thermo-mechanics: a new frontier of experimental physics
- Imaging nanomechanical vibrations and manipulating parametric mode coupling via scanning microwave microscopy
- Nanomechanical damping via electron-assisted relaxation of two-level systems
- Microwave Optomechanically Induced Transparency and Absorption Between 250 and 450 mK
- A Novel Architecture for room temperature microwave optomechanical experiments
- Mechanical characterization of a membrane with an on-chip loss shield in a cryogenic environment
- High- membrane resonators using ultra-high-stress crystalline TiN films
- Quantitative calibration of a TWPA applied to an optomechanical platform