Prospects for reaching persistent entanglement between two spatially-separated atomic Bose–Einstein condensates are outlined. The system setup comprises two condensates loaded in an optical lattice, which, in return, is confined within a high-Q optical resonator. The system is driven by an external laser that illuminates the atoms, such that photons can scatter into the cavity. In the superradiant phase, a cavity field is established, and we show that the emerging cavity-mediated interactions between the two condensates is capable of entangling them despite photon losses. This macroscopic atomic entanglement is sustained throughout the time-evolution apart from occasions of sudden deaths/births. Using an auxiliary photon mode and coupling i...
Optical cavity QED provides a platform with which to explore quantum many-body physics in driven-dis...
Recently we predicted a random blinking, i.e. macroscopic quantum jumps, in the fluorescence of a la...
One of the main ingredients in most quantum information protocols is a reliable source of two entang...
We address the interaction between a Bose-Einstein condensate and a single-mode quantized radiation ...
This dissertation contains a study of ultracold atoms in optical cavities. We particularly focus on ...
The interaction between a Bose-Einstein condensate and a single-mode quantized radiation field in th...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017.Cataloged from PD...
We consider an ultracold quantum degenerate gas in an optical lattice inside a cavity. This system r...
The present work investigates quantum phenomena with large size systems generated in the microscopic...
A Bose-Einstein condensate is dispersively coupled to a single mode of an ultra-high finesse optical...
We predict that the collective excitations of an atomic array become entangled with the light of a h...
We study an ultracold gas of neutral atoms subject to the periodic optical potential generated by a ...
We propose to generate Einstein-Podolsky-Rosen (EPR) entanglement between groups of atoms in a two-w...
We propose a scheme for the realization of a hybrid, strongly quantum-correlated system formed of an...
We examine the properties of an atom laser produced by outcoupling from a Bose-Einstein condensate w...
Optical cavity QED provides a platform with which to explore quantum many-body physics in driven-dis...
Recently we predicted a random blinking, i.e. macroscopic quantum jumps, in the fluorescence of a la...
One of the main ingredients in most quantum information protocols is a reliable source of two entang...
We address the interaction between a Bose-Einstein condensate and a single-mode quantized radiation ...
This dissertation contains a study of ultracold atoms in optical cavities. We particularly focus on ...
The interaction between a Bose-Einstein condensate and a single-mode quantized radiation field in th...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Physics, 2017.Cataloged from PD...
We consider an ultracold quantum degenerate gas in an optical lattice inside a cavity. This system r...
The present work investigates quantum phenomena with large size systems generated in the microscopic...
A Bose-Einstein condensate is dispersively coupled to a single mode of an ultra-high finesse optical...
We predict that the collective excitations of an atomic array become entangled with the light of a h...
We study an ultracold gas of neutral atoms subject to the periodic optical potential generated by a ...
We propose to generate Einstein-Podolsky-Rosen (EPR) entanglement between groups of atoms in a two-w...
We propose a scheme for the realization of a hybrid, strongly quantum-correlated system formed of an...
We examine the properties of an atom laser produced by outcoupling from a Bose-Einstein condensate w...
Optical cavity QED provides a platform with which to explore quantum many-body physics in driven-dis...
Recently we predicted a random blinking, i.e. macroscopic quantum jumps, in the fluorescence of a la...
One of the main ingredients in most quantum information protocols is a reliable source of two entang...