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Quantum control of a nanoparticle optically levitated in cryogenic free space
- Source :
- Nature, Nature, 595 (7867)
- Publication Year :
- 2021
- Publisher :
- Springer Science and Business Media LLC, 2021.
-
Abstract
- Tests of quantum mechanics on a macroscopic scale require extreme control over mechanical motion and its decoherence. Quantum control of mechanical motion has been achieved by engineering the radiation–pressure coupling between a micromechanical oscillator and the electromagnetic field in a resonator. Furthermore, measurement-based feedback control relying on cavity-enhanced detection schemes has been used to cool micromechanical oscillators to their quantum ground states8. In contrast to mechanically tethered systems, optically levitated nanoparticles are particularly promising candidates for matter-wave experiments with massive objects, since their trapping potential is fully controllable. Here we optically levitate a femtogram (10−15 grams) dielectric particle in cryogenic free space, which suppresses thermal effects sufficiently to make the measurement backaction the dominant decoherence mechanism. With an efficient quantum measurement, we exert quantum control over the dynamics of the particle. We cool its centre-of-mass motion by measurement-based feedback to an average occupancy of 0.65 motional quanta, corresponding to a state purity of 0.43. The absence of an optical resonator and its bandwidth limitations holds promise to transfer the full quantum control available for electromagnetic fields to a mechanical system. Together with the fact that the optical trapping potential is highly controllable, our experimental platform offers a route to investigating quantum mechanics at macroscopic scales.<br />Nature, 595 (7867)<br />ISSN:0028-0836<br />ISSN:1476-4687
- Subjects :
- Electromagnetic field
Physics
Quantum Physics
Multidisciplinary
Quantum decoherence
business.industry
FOS: Physical sciences
01 natural sciences
010305 fluids & plasmas
law.invention
Optical tweezers
law
Macroscopic scale
Optical cavity
0103 physical sciences
Levitation
Optoelectronics
Quantum Physics (quant-ph)
010306 general physics
business
Ground state
Quantum
Subjects
Details
- ISSN :
- 14764687 and 00280836
- Volume :
- 595
- Database :
- OpenAIRE
- Journal :
- Nature
- Accession number :
- edsair.doi.dedup.....9b35b4bd3618d84b01d695f96838edce