Nonclassical states of levitated macroscopic objects beyond the ground state
Andrey A. Rakhubovsky, Darren W. Moore, Radim Filip

TL;DR
This paper explores methods to generate nonclassical, squeezed quantum states of levitated nanoparticles using pulsed optomechanics, even when ground-state cooling is not feasible, advancing quantum control of macroscopic objects.
Contribution
It demonstrates the potential for conditional squeezing of levitated particles beyond the ground state without requiring ground-state cooling, using a regime beyond the adiabatic approximation.
Findings
Quantum state of levitated particles can be squeezed below ground state variance.
Squeezing is achievable over a wide temperature range.
Analysis extends beyond the adiabatic regime for pulsed optomechanics.
Abstract
The preparation of nonclassical states of mechanical motion conclusively proves that control over such motion has reached the quantum level. We investigate ways to achieve nonclassical states of macroscopic mechanical oscillators, particularly levitated nanoparticles. We analyze the possibility of the conditional squeezing of the levitated particle induced by the homodyne detection of light in a pulsed optomechanical setup within the resolved sideband regime. We focus on the regimes that are experimentally relevant for the levitated systems where the ground-state cooling is not achievable and the optomechanical coupling is comparable with the cavity linewidth. The analysis is thereby performed beyond the adiabatic regime routinely used for the bulk optomechanical pulsed systems. The results show that the quantum state of a levitated particle could be squeezed below the ground state…
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