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20182025
most citedMotional Quantum Ground State of a Levitated Nanoparticle from Room Temperature

679 citations · 696 across the 2 of their papers we have counts for

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6 papers · 1 filter

quant-ph2025

Quantum ground-state cooling of two librational modes of a nanorotor

Stephan Troyer, Florian Fechtel, Lorenz Hummer +4

Controlling the motion of nanoscale objects at the quantum limit promises new tests of quantum mechanics and advanced sensors. Rotational motion is of particular interest, as it fo…

quant-ph202417 cited

Quantum Optical Binding of Nanoscale Particles

Henning Rudolph, Uroš Delić, Klaus Hornberger +1

Optical binding refers to the light-induced interaction between two or more objects illuminated by laser fields. The high tunability of the strength, sign, and reciprocity of this…

quant-ph2020

Detecting nonclassical correlations in levitated cavity optomechanics

Andrey A. Rakhubovsky, Darren W. Moore, Uroš Delić +3

Nonclassical optomechanical correlations enable optical control of mechanical motion beyond the limitations of classical driving. Here we investigate the feasibility of using pulse…

quant-ph2019679 cited

Motional Quantum Ground State of a Levitated Nanoparticle from Room Temperature

Uroš Delić, Manuel Reisenbauer, Kahan Dare +4

We report quantum ground state cooling of a levitated nanoparticle in a room temperature environment. Using coherent scattering into an optical cavity we cool the center of mass mo…

quant-ph2018

Cavity cooling of a levitated nanosphere by coherent scattering

Uroš Delić, Manuel Reisenbauer, David Grass +3

We report three-dimensional cooling of a levitated nanoparticle inside an optical cavity. The cooling mechanism is provided by cavity-enhanced coherent scattering off an optical tw…

quant-ph2018

Near-field coupling of a levitated nanoparticle to a photonic crystal cavity

Lorenzo Magrini, Richard A. Norte, Ralf Riedinger +6

Quantum control of levitated dielectric particles is an emerging subject in quantum optomechanics. A major challenge is to efficiently measure and manipulate the particle's motion…