Periodic deterministic bang-bang dynamical decoupling and the quantum Zeno effect are known to emerge from the same physical mechanism. Both concepts are based on cycles of strong and frequent kicks provoking a subdivision of the Hilbert space into independent subspaces. However, previous unification results do not capture the case of random bang-bang dynamical decoupling, which can be advantageous to the deterministic case but has an inherently acyclic structure. Here, we establish a correspondence between random dynamical decoupling and the quantum Zeno effect by investigating the average over random decoupling evolutions. This protocol is a manifestation of the quantum Zeno dynamics and leads to a unitary bath evolution. By providing a f...
Dynamical decoupling is a key method to mitigate errors in a quantum mechanical system, and we studi...
Symmetries (and their spontaneous rupturing) can be used to protect and engender novel quantum phase...
We study the behavior of Quantum Darwinism (Zurek, Nature Physics 5, 181 - 188 (2009)) within the it...
We unify the quantum Zeno effect (QZE) and the "bang-bang" (BB) decoupling method for suppressing de...
We demonstrate the advantages of randomization in coherent quantum dynamical control. For systems wh...
Parametric fluctuations or stochastic signals are introduced into the rectangular pulse sequence to ...
We combine the collisional picture for open system dynamics and the control of the rate of decoheren...
We consider the evolution of an arbitrary quantum dynamical semigroup of a finite-dimensional quantu...
We reexamine the problem of switching off unwanted phase evolution and decoherence in a single two-s...
We investigate the relationship between non-Markovianity and the effectiveness of a dynamical decoup...
Dynamical decoupling is the leading technique to remove unwanted interactions in a vast range of qua...
We revisit the problem of switching off unwanted phase evolution and decoherence in a single two-sta...
The evolution of a quantum system undergoing very frequent measurements takes place in a proper subs...
Control scenarios have been identified where the use of randomized design may substantially improve ...
In the context of unitary evolution of a generic quantum system interrupted at random times with non...
Dynamical decoupling is a key method to mitigate errors in a quantum mechanical system, and we studi...
Symmetries (and their spontaneous rupturing) can be used to protect and engender novel quantum phase...
We study the behavior of Quantum Darwinism (Zurek, Nature Physics 5, 181 - 188 (2009)) within the it...
We unify the quantum Zeno effect (QZE) and the "bang-bang" (BB) decoupling method for suppressing de...
We demonstrate the advantages of randomization in coherent quantum dynamical control. For systems wh...
Parametric fluctuations or stochastic signals are introduced into the rectangular pulse sequence to ...
We combine the collisional picture for open system dynamics and the control of the rate of decoheren...
We consider the evolution of an arbitrary quantum dynamical semigroup of a finite-dimensional quantu...
We reexamine the problem of switching off unwanted phase evolution and decoherence in a single two-s...
We investigate the relationship between non-Markovianity and the effectiveness of a dynamical decoup...
Dynamical decoupling is the leading technique to remove unwanted interactions in a vast range of qua...
We revisit the problem of switching off unwanted phase evolution and decoherence in a single two-sta...
The evolution of a quantum system undergoing very frequent measurements takes place in a proper subs...
Control scenarios have been identified where the use of randomized design may substantially improve ...
In the context of unitary evolution of a generic quantum system interrupted at random times with non...
Dynamical decoupling is a key method to mitigate errors in a quantum mechanical system, and we studi...
Symmetries (and their spontaneous rupturing) can be used to protect and engender novel quantum phase...
We study the behavior of Quantum Darwinism (Zurek, Nature Physics 5, 181 - 188 (2009)) within the it...