Lens-free Optical Detection of Thermal Motion of a Sub-millimeter Sphere Diamagnetically Levitated in High Vacuum
arXiv:2105.13555 · doi:10.1103/PhysRevApplied.16.L011003
Abstract
Levitated oscillators with millimeter or sub-millimeter size are particularly attractive due to their potential role in studying various fundamental problems and practical applications. One of the crucial issues towards these goals is to achieve efficient measurements of oscillator motion, while this remains a challenge. Here we theoretically propose a lens-free optical detection scheme, which can be used to detect the motion of a millimeter or sub-millimeter levitated oscillator with a measurement efficiency close to the standard quantum limit with a modest optical power. We demonstrate experimentally this scheme on a 0.5 mm diameter micro-sphere that is diamagnetically levitated under high vacuum and room temperature, and the thermal motion is detected with high precision. Based on this system, an estimated acceleration sensitivity of is achieved, which is more than one order improvement over the best value reported by the levitated mechanical system. Due to the stability of the system, the minimum resolved acceleration of is reached with measurement times of s. This result is expected to have potential applications in the study of exotic interactions in the millimeter or sub-millimeter range and the realization of compact gravimeter and accelerometer.
Physical Review Applied (to be published)
References in corpus (11)
- Motional Quantum Ground State of a Levitated Nanoparticle from Room Temperature
- Atom-interferometric test of the equivalence principle at the level
- Search for Millicharged Particles Using Optically Levitated Microspheres
- Search for composite dark matter with optically levitated sensors
- Acceleration sensing with magnetically levitated oscillators above a superconductor
- Testing spontaneous wave-function collapse models on classical mechanical oscillators
- Testing collapse models with levitated nanoparticles: the detection challenge
- High sensitivity accelerometry with a feedback-cooled magnetically levitated microsphere
- Mechanical dissipation below 1Hz with a cryogenic diamagnetic-levitated micro-oscillator
- Quantum sensing with milligram scale optomechanical systems
- Testing Dissipative Collapse Models with a Levitated Micromagnet
Cited by in corpus (10)
- Ultra-high quality factor of a levitated nanomechanical oscillator
- Challenging theories of dark energy with levitated force sensor
- 3D sympathetic cooling and detection of levitated nanoparticles
- Measurement of the earth tides with a diamagnetic-levitated micro-oscillator at room temperature
- Searching for Chameleon Dark Energy with Mechanical Systems
- Search for ultralight dark matter with a frequency adjustable diamagnetic levitated sensor
- Stable magnetic levitation of soft ferromagnets for macroscopic quantum mechanics
- Constraints on Velocity and Spin Dependent Exotic Interaction at the Millimeter Scale with a Diamagnetic-levitated Force Sensor
- A nanoparticle stored with an atomic ion in a linear Paul trap
- Levitated Milligram-scale Ferromagnetic Magnetometer at Room Temperature