Spatial mode decomposition of back-scattered light from a levitated nanoparticle yields 3D displacement sensitivities below zero-point motion with estimated total efficiencies above 1/9.
Three-Dimensional and Selective Displacement Sensing of a Levitated Nanoparticle via Spatial Mode Decomposition
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abstract
We propose and experimentally demonstrate a novel detection method that significantly improves the precision of real-time measurement of the three-dimensional displacement of a levitated dipolar scatterer. Our technique relies on spatial mode sorting of the light scattered by the levitated object, allowing us to selectively extract the position information of all translational degrees of freedom with minimal losses. To this end, we collect all the light back-scattered from a levitated nanoparticle using a parabolic mirror and couple it into a spatial mode sorter. We measure displacement sensitivities ($\sqrt{S_{\mathrm{imp}, x}}, \sqrt{S_{\mathrm{imp}, y}}, \sqrt{S_{\mathrm{imp}, z}}$) $=$ (1.7, 2.4, 1.0) $\times$ $10^{-14}$ m/$\sqrt{\mathrm{Hz}}$ below the zero-point motion ($x_{\mathrm{zpm}}, y_{\mathrm{zpm}}, z_{\mathrm{zpm}}$) $=$ (2.2, 2.4, 1.6) $\times$ $10^{-12}$ m of the levitated particle considered here. In the regime where environmental decoherence is not limited by gas collision we estimate that our method can reach measurement efficiencies of $(\eta_{^{\mathrm{tot}}}^{_{x}}, \eta_{^{\mathrm{tot}}}^{_{y}}, \eta_{^{\mathrm{tot}}}^{_{z}}) = (0.13, 0.18, 0.33) > 1/9$, which would enable the 3D motional quantum ground state of a levitated optomechanical system.
verdicts
UNVERDICTED 2representative citing papers
A rotating all-optical saddle trap for levitated nanoparticles enables reduced decoherence, large motional delocalization, and zepto-Newton force detection in mesoscopic quantum experiments.
citing papers explorer
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Three-Dimensional and Selective Displacement Sensing of a Levitated Nanoparticle via Spatial Mode Decomposition
Spatial mode decomposition of back-scattered light from a levitated nanoparticle yields 3D displacement sensitivities below zero-point motion with estimated total efficiencies above 1/9.
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All-optical saddle trap as a platform for mesoscopic quantum experiments
A rotating all-optical saddle trap for levitated nanoparticles enables reduced decoherence, large motional delocalization, and zepto-Newton force detection in mesoscopic quantum experiments.