We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply decohering dynamics and show that whenever the dynamics is non-Markovian, the initial speed of evolution is a monotonic function of the relevant physical parameter driving the transition between the Markovian and non-Markovian behavior of the dynamics. In particular, within the considered models, a speed increase can only be observed in the presence of backflow of information from the environment to the system
A quantum process is called non-Markovian when memory effects take place during its evolution. Quant...
Recent developments in practical quantum engineering and control techniques have allowed significant...
Non-Markovian effects arising in open quantum system evolution have been a subject of increasing int...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
The quantum speed limit (QSL) sets a bound on the minimum time required for a quantum system to evol...
The quantum speed limit (QSL) sets a bound on the minimum time required for a quantum system to evol...
The quantum speed limit (QSL) sets a bound on the minimum time required for a quantum system to evol...
Non-Markovian effects can speed up the dynamics of quantum systems while the limits of the evolution...
Non-Markovian effects can speed up the dynamics of quantum systems while the limits of the evolution...
Non-Markovian evolution in open quantum systems is often characterized in terms of the backflow of i...
Non-Markovian evolution in open quantum systems is often characterized in terms of the backflow of i...
During the last ten years, the studies on non-Markovian open system dynamics has become increasingly...
A quantum process is called non-Markovian when memory effects take place during its evolution. Quant...
Recent developments in practical quantum engineering and control techniques have allowed significant...
Non-Markovian effects arising in open quantum system evolution have been a subject of increasing int...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
We consider a two-level open quantum system undergoing pure dephasing, dissipative, or multiply deco...
The quantum speed limit (QSL) sets a bound on the minimum time required for a quantum system to evol...
The quantum speed limit (QSL) sets a bound on the minimum time required for a quantum system to evol...
The quantum speed limit (QSL) sets a bound on the minimum time required for a quantum system to evol...
Non-Markovian effects can speed up the dynamics of quantum systems while the limits of the evolution...
Non-Markovian effects can speed up the dynamics of quantum systems while the limits of the evolution...
Non-Markovian evolution in open quantum systems is often characterized in terms of the backflow of i...
Non-Markovian evolution in open quantum systems is often characterized in terms of the backflow of i...
During the last ten years, the studies on non-Markovian open system dynamics has become increasingly...
A quantum process is called non-Markovian when memory effects take place during its evolution. Quant...
Recent developments in practical quantum engineering and control techniques have allowed significant...
Non-Markovian effects arising in open quantum system evolution have been a subject of increasing int...