We explore how to cool collective atomic excitations in an optically-driven three-level atomic ensemble, which may be described by a model of two coupled harmonic oscillators (HOs) with a time-dependent coupling. Moreover, the model of two coupled HOs is further generalized to address the resolved sideband cooling issues, where the lower-frequency HO can be cooled whenever the cooling process dominates over the heating one during the sideband transitions. Unusually, due to the absence of the heating process, the optimal result for cooling collective excitations in an atomic ensemble could break the standard resolved sideband cooling limit for general models of two coupled HOs
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We present a microscopic laser model for many atoms coupled to a single cavity mode, including the l...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We explore how to cool collective atomic excitations in an optically-driven three-level atomic ensem...
We demonstrate cavity sideband cooling of a single collective motional mode of an atomic ensemble do...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We analyze the lowest achievable temperature for a mechanical oscillator coupled with a quantum refr...
In this paper, we identify a many-particle phonon expectation value ζ with the ability to induce col...
In a recent paper [Beige, Knight, and Vitiello, quant-ph/0404160], we showed that a large number N o...
In a recent paper [Beige, Knight, and Vitiello, quant-ph/0404160], we showed that a large number N o...
We investigate theoretically a novel optical technique to cool atomic or molecular species without a...
In a recent paper [Beige, Knight, and Vitiello, quant-ph/0404160], we showed that a large number N o...
Multimode optomechanical systems are an emerging platform for studying fundamental aspects of matter...
Multimode optomechanical systems are an emerging platform for studying fundamental aspects of matter...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We present a microscopic laser model for many atoms coupled to a single cavity mode, including the l...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We explore how to cool collective atomic excitations in an optically-driven three-level atomic ensem...
We demonstrate cavity sideband cooling of a single collective motional mode of an atomic ensemble do...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We analyse a laser assisted sympathetic cooling scheme for atoms within the lowest Bloch band of an ...
We analyze the lowest achievable temperature for a mechanical oscillator coupled with a quantum refr...
In this paper, we identify a many-particle phonon expectation value ζ with the ability to induce col...
In a recent paper [Beige, Knight, and Vitiello, quant-ph/0404160], we showed that a large number N o...
In a recent paper [Beige, Knight, and Vitiello, quant-ph/0404160], we showed that a large number N o...
We investigate theoretically a novel optical technique to cool atomic or molecular species without a...
In a recent paper [Beige, Knight, and Vitiello, quant-ph/0404160], we showed that a large number N o...
Multimode optomechanical systems are an emerging platform for studying fundamental aspects of matter...
Multimode optomechanical systems are an emerging platform for studying fundamental aspects of matter...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...
We present a microscopic laser model for many atoms coupled to a single cavity mode, including the l...
We study the dynamics of the cooling of a gas of caesium atoms in an optical lattice, both experimen...