We study the strong coupling between photons and atoms that can be achieved in an optical nanofiber geometry when the interaction is dispersive. While the Purcell enhancement factor for spontaneous emission into the guided mode does not reach the strong-coupling regime for individual atoms, one can obtain high cooperativity for ensembles of a few thousand atoms due to the tight confinement of the guided modes and constructive interference over the entire chain of trapped atoms. We calculate the dyadic Green's function, which determines the scattering of light by atoms in the presence of the fiber, and thus the phase shift and polarization rotation induced on the guided light by the trapped atoms. The Green's function is related to a full He...
We built a new experiment using cold atoms interacting with the light guided by an optical nanofiber...
We report new experiments that test quantum dynamical predictions of polarization squeezing for ultr...
Coherent interaction between matter waves and light is the core of quantum sciences and technologies...
New effects can arise in quantum physics when there is strong coupling, ei-ther between atoms and li...
We observe collective quantum spin states of an ensemble of atoms in a one-dimensional light-atom in...
The coupling of cold atoms to 1D nanoscale waveguides have opened new avenues of research. The waveg...
We observe that a weak guided light field transmitted through an ensemble of atoms coupled to an opt...
We study the three-dimensional nature of the quantum interface between an ensemble of cold, trapped ...
Squeezing of collective atomic spins has been shown to improve the sensitivity of atomic clocks and ...
Reversible light-matter interfaces are crucial elements in quantum optics and quantum information ne...
Optical nanofibres (ONFs) are very thin optical waveguides with sub-wavelength diameters. ONFs have ...
We observe collective quantum spin states of an ensemble of atoms in a one-dimensional light-atom in...
In this thesis, I present the realization of a fiber-optical interface using optically trapped cesiu...
Atomic clocks have reached the Standard Quantum Limit (SQL) of precision,1 set by the projection noi...
In this thesis, I present the realization of a fiber-optical interface using optically trapped cesiu...
We built a new experiment using cold atoms interacting with the light guided by an optical nanofiber...
We report new experiments that test quantum dynamical predictions of polarization squeezing for ultr...
Coherent interaction between matter waves and light is the core of quantum sciences and technologies...
New effects can arise in quantum physics when there is strong coupling, ei-ther between atoms and li...
We observe collective quantum spin states of an ensemble of atoms in a one-dimensional light-atom in...
The coupling of cold atoms to 1D nanoscale waveguides have opened new avenues of research. The waveg...
We observe that a weak guided light field transmitted through an ensemble of atoms coupled to an opt...
We study the three-dimensional nature of the quantum interface between an ensemble of cold, trapped ...
Squeezing of collective atomic spins has been shown to improve the sensitivity of atomic clocks and ...
Reversible light-matter interfaces are crucial elements in quantum optics and quantum information ne...
Optical nanofibres (ONFs) are very thin optical waveguides with sub-wavelength diameters. ONFs have ...
We observe collective quantum spin states of an ensemble of atoms in a one-dimensional light-atom in...
In this thesis, I present the realization of a fiber-optical interface using optically trapped cesiu...
Atomic clocks have reached the Standard Quantum Limit (SQL) of precision,1 set by the projection noi...
In this thesis, I present the realization of a fiber-optical interface using optically trapped cesiu...
We built a new experiment using cold atoms interacting with the light guided by an optical nanofiber...
We report new experiments that test quantum dynamical predictions of polarization squeezing for ultr...
Coherent interaction between matter waves and light is the core of quantum sciences and technologies...