We study a string of neutral atoms with nearest neighbor interaction in a 1D beam splitter configuration, where the longitudinal motion is controlled by a moving optical lattice potential. The dynamics of the atoms crossing the beam splitter maps to a 1D spin model with controllable time dependent parameters, which allows the creation of maximally entangled states of atoms by crossing a quantum phase transition. Furthermore, we show that this system realizes protected quantum memory, and we discuss the implementation of one- and two-qubit gates in this setup
Single atoms in dipole microtraps or optical tweezers have recently become a promising platform for ...
© 2019 American Physical Society. We report the implementation of universal two- A nd three-qubit en...
We review novel methods for the investigation, control and manipulation of neutral atoms in optical ...
We study a string of neutral atoms with nearest neighbor interaction in a 1D beam splitter configura...
We introduce a fully coherent way for directed state transport of an atom in 1D optical la...
We introduce a fully coherent way for directed transport of localized atoms in optical lattices by r...
We review recent proposals for performing entanglement manipulation via cold collisions between neut...
AbstractThe ability to engineer parallel, programmable operations between desired qubits within a qu...
In this thesis, I describe early experiments with a new platform that harnesses control over the ful...
In this work we present the modeling of possible interactions among N neutral atoms trapped in an op...
Arrays of qubits encoded in the ground-state manifold of neutral atoms trapped in optical (or magnet...
We present an economical dynamical control scheme to perform quantum computation on a one dimensiona...
We consider the nonequilibrium dynamics of a driven dissipative spin chain with chiral coupling to a...
We study a system of neutral atoms trapped in a three-dimensional optical lattice suitable for the e...
We propose a protocol for creating a fully entangled Greenberger-Horne-Zeilinger-type state of neutr...
Single atoms in dipole microtraps or optical tweezers have recently become a promising platform for ...
© 2019 American Physical Society. We report the implementation of universal two- A nd three-qubit en...
We review novel methods for the investigation, control and manipulation of neutral atoms in optical ...
We study a string of neutral atoms with nearest neighbor interaction in a 1D beam splitter configura...
We introduce a fully coherent way for directed state transport of an atom in 1D optical la...
We introduce a fully coherent way for directed transport of localized atoms in optical lattices by r...
We review recent proposals for performing entanglement manipulation via cold collisions between neut...
AbstractThe ability to engineer parallel, programmable operations between desired qubits within a qu...
In this thesis, I describe early experiments with a new platform that harnesses control over the ful...
In this work we present the modeling of possible interactions among N neutral atoms trapped in an op...
Arrays of qubits encoded in the ground-state manifold of neutral atoms trapped in optical (or magnet...
We present an economical dynamical control scheme to perform quantum computation on a one dimensiona...
We consider the nonequilibrium dynamics of a driven dissipative spin chain with chiral coupling to a...
We study a system of neutral atoms trapped in a three-dimensional optical lattice suitable for the e...
We propose a protocol for creating a fully entangled Greenberger-Horne-Zeilinger-type state of neutr...
Single atoms in dipole microtraps or optical tweezers have recently become a promising platform for ...
© 2019 American Physical Society. We report the implementation of universal two- A nd three-qubit en...
We review novel methods for the investigation, control and manipulation of neutral atoms in optical ...