Optimal Cooling of Multiple Levitated Particles: Theory of Far-Field Wavefront-Shaping
arXiv:2206.01046 · doi:10.1103/PhysRevA.107.023112
Abstract
The opportunity to manipulate small-scale objects pushes us to the limits of our understanding of physics. Particularly promising in this regard is the interdisciplinary field of levitation, in which light fields can be harnessed to isolate nano-particles from their environment by levitating them optically. When cooled down towards their motional quantum ground state, levitated systems offer the tantalizing prospect of displaying mesoscopic quantum properties. Currently restricted to single objects with simple shapes, the interest in levitation is currently moving towards the manipulation of more complex structures, such as those featuring multiple particles or different degrees of freedom. Unfortunately, current cooling techniques are mostly designed for single objects and thus cannot easily be multiplexed to address such coupled many-body systems. Here, we present an approach based on the spatial modulation of light in the far-field to cool down multiple nano-objects in parallel. Our procedure is based on the experimentally measurable scattering matrix and on its changes with time. We demonstrate how to compose from these ingredients a linear energy-shift operator, whose eigenstates are identified as the incoming wavefronts that implement the most efficient cooling of complex moving ensembles of levitated particles. Submitted in parallel with arxiv:2103.12592, this article provides a theoretical and numerical study of the expected cooling performance as well as of the robustness of the method against environmental parameters.
Posted in parallel with arXiv:2103.12592, this preprint provides extended simulations and theoretical considerations on our far-field cooling scheme
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Cited by in corpus (10)
- Continuity Equation for the Flow of Fisher Information in Wave Scattering
- Suppressing Recoil Heating in Levitated Optomechanics using Squeezed Light
- Optimal Cooling of Multiple Levitated Particles through Far-Field Wavefront-Shaping
- Wave momentum shaping for moving objects in heterogeneous and dynamic media
- Tractor beams with optimal pulling force using structured waves
- Detecting and Focusing on a Nonlinear Target in a Complex Medium
- Pseudounitary Floquet scattering matrix for wave-front shaping in time-periodic photonic media
- Collective-motion-enhanced acceleration sensing via an optically levitated microsphere array
- Dynamic and Geometric Shifts in Wave Scattering
- Extended scattering channels for random matrix simulations of polarized light transport