We investigate decoherence in the quantum kicked rotator (modeling cold atoms in a pulsed optical field) subjected to noise with power-law tail waiting-time distributions of variable exponent (Lévy noise). We demonstrate the existence of a regime of nonexponential decoherence where the notion of a decoherence rate is ill defined. In this regime, dynamical localization is never fully destroyed, indicating that the dynamics of the quantum system never reaches the classical limit. We show that this leads to quantum subdiffusion of the momentum, which should be observable in an experiment
In this work the decoherence formalism of quantum mechanics is explored and applied to a number of i...
We investigate the long-time limit of quantum localization of the kicked Rydberg atom. The kicked Ry...
We study the dynamics of a quantum rotator, impulsively kicked according to the almost-periodic Fibo...
We investigate decoherence in the quantum kicked rotator (modelling cold atoms in a pulsed optical f...
We develop a theory describing the dynamics of quantum kicked rotators (modeling cold atoms in a pul...
The quantum kicked rotor is studied experimentally in an atom-optics setting, where we observe the c...
The dynamics of chaotic Hamiltonian systems such as the kicked rotor continues to guide our understa...
The Kicked Rotor is a well studied example of a classical Hamiltonian chaotic system, where the mome...
International audienceWe study the dynamics of a quantum spin ensemble controlled by trains of ultra...
We analyze the interplay of chaos, entanglement, and decoherence in a system of qubits whose collect...
We investigate the quantum irreversibility and quantum diffusion in a non-Hermitian kicked rotor mod...
By submitting a cloud of cold caesium atoms to a periodically pulsed standing wave, we experimentall...
This thesis investigates quantum transport in the energy space of two paradigm systems of quantum ch...
We study the dynamics of the entanglement between two qubits coupled to a common chaotic environment...
Several quantum phenomena have been experimentally investigated using the system of ultra-cold atoms...
In this work the decoherence formalism of quantum mechanics is explored and applied to a number of i...
We investigate the long-time limit of quantum localization of the kicked Rydberg atom. The kicked Ry...
We study the dynamics of a quantum rotator, impulsively kicked according to the almost-periodic Fibo...
We investigate decoherence in the quantum kicked rotator (modelling cold atoms in a pulsed optical f...
We develop a theory describing the dynamics of quantum kicked rotators (modeling cold atoms in a pul...
The quantum kicked rotor is studied experimentally in an atom-optics setting, where we observe the c...
The dynamics of chaotic Hamiltonian systems such as the kicked rotor continues to guide our understa...
The Kicked Rotor is a well studied example of a classical Hamiltonian chaotic system, where the mome...
International audienceWe study the dynamics of a quantum spin ensemble controlled by trains of ultra...
We analyze the interplay of chaos, entanglement, and decoherence in a system of qubits whose collect...
We investigate the quantum irreversibility and quantum diffusion in a non-Hermitian kicked rotor mod...
By submitting a cloud of cold caesium atoms to a periodically pulsed standing wave, we experimentall...
This thesis investigates quantum transport in the energy space of two paradigm systems of quantum ch...
We study the dynamics of the entanglement between two qubits coupled to a common chaotic environment...
Several quantum phenomena have been experimentally investigated using the system of ultra-cold atoms...
In this work the decoherence formalism of quantum mechanics is explored and applied to a number of i...
We investigate the long-time limit of quantum localization of the kicked Rydberg atom. The kicked Ry...
We study the dynamics of a quantum rotator, impulsively kicked according to the almost-periodic Fibo...