The theoretical basis leading to the creation of a light field with a hexagonal honeycomb structure resembling graphene is considered along with its experimental realization and its interaction with atoms. It is argued that associated with such a light field is an optical dipole potential which leads to the diffraction of the atoms, but the details depend on whether the transverse spread of the atomic wave packet is larger than the transverse dimensions of the optical lattice (resonant Kapitza-Dirac effect) or smaller (optical Stern-Gerlach effect). Another effect in this context involves the creation of gauge fields due to the Berry phase acquired by the atom moving in the light field. The experimental realization of the light field with a...
Graphene, a two dimensional honeycomb structure comprised of carbon atoms, has\ud sparked great inte...
In 1996, Lloyd [1] showed that the dynamics of complex many-body quantum systems can be efficiently ...
Abstract. Gauge fields are central in our modern understanding of physics at all scales. At the high...
The theoretical basis leading to the creation of a light field with a hexagonal honeycomb structure ...
Seminar Goethe University, Frankfurt, Germany, 18-04-2013Ultracold atomic gases in optical lattices ...
Ultracold atomic gases trapped at the interference of coherent beams of light constitute an artifici...
We propose a hexagonal optical lattice system with spatial variations in the hopping matrix elements...
In condensed matter physics, the peculiar Dirac dynamics of electrons in graphene enables a plethora...
Copyright © 2013 American Physical SocietyWe consider a two-dimensional honeycomb lattice of metalli...
We study interactions of light with a sample of two-level atoms. Quantum statistical effects of dege...
Graphene has drawn extraordinary interest from both scientists and the wider public; the idea of an ...
Would you ever guess that a microscopic flake of graphite could reverse the diffraction of light? An...
Optical lattices are periodic arrangements of laser cooled atoms trapped in potentials created by th...
We experimentally realized the Harper Hamiltonian with charge neutral, ultracold atoms in optical la...
Natural and artificial honeycomb lattices are of great interest because the band structure of these ...
Graphene, a two dimensional honeycomb structure comprised of carbon atoms, has\ud sparked great inte...
In 1996, Lloyd [1] showed that the dynamics of complex many-body quantum systems can be efficiently ...
Abstract. Gauge fields are central in our modern understanding of physics at all scales. At the high...
The theoretical basis leading to the creation of a light field with a hexagonal honeycomb structure ...
Seminar Goethe University, Frankfurt, Germany, 18-04-2013Ultracold atomic gases in optical lattices ...
Ultracold atomic gases trapped at the interference of coherent beams of light constitute an artifici...
We propose a hexagonal optical lattice system with spatial variations in the hopping matrix elements...
In condensed matter physics, the peculiar Dirac dynamics of electrons in graphene enables a plethora...
Copyright © 2013 American Physical SocietyWe consider a two-dimensional honeycomb lattice of metalli...
We study interactions of light with a sample of two-level atoms. Quantum statistical effects of dege...
Graphene has drawn extraordinary interest from both scientists and the wider public; the idea of an ...
Would you ever guess that a microscopic flake of graphite could reverse the diffraction of light? An...
Optical lattices are periodic arrangements of laser cooled atoms trapped in potentials created by th...
We experimentally realized the Harper Hamiltonian with charge neutral, ultracold atoms in optical la...
Natural and artificial honeycomb lattices are of great interest because the band structure of these ...
Graphene, a two dimensional honeycomb structure comprised of carbon atoms, has\ud sparked great inte...
In 1996, Lloyd [1] showed that the dynamics of complex many-body quantum systems can be efficiently ...
Abstract. Gauge fields are central in our modern understanding of physics at all scales. At the high...