For finite-dimensional quantum systems, such as qubits, a well established strategy to protect such systems from decoherence is dynamical decoupling. However many promising quantum devices, such as oscillators, are infinite dimensional, for which the question if dynamical decoupling could be applied remained open. Here we first show that not every infinite-dimensional system can be protected from decoherence through dynamical decoupling. Then we develop dynamical decoupling for continuous variable systems which are described by quadratic Hamiltonians. We identify a condition and a set of operations that allow us to map a set of interacting harmonic oscillators onto a set of non-interacting oscillators rotating with an averaged frequency, a ...
A long-standing challenge in the foundations of quantum mechanics is the verification of alternative...
It is shown that if one can perform a restricted set of fast manipulations on a quantum system, one ...
Introduction In this chapter we continue the introduction to dynamical decoupling techniques for ope...
For finite-dimensional quantum systems, such as qubits, a well established strategy to protect such ...
We investigate the possibility to suppress interactions between a finite dimensional system and an i...
In the field of quantum information, a major challenge is to protect and shield quantum systems from...
Speeding up the dynamics of a quantum system is of paramount importance for quantum technologies. Ho...
Dynamical decoupling is a key method to mitigate errors in a quantum mechanical system, and we studi...
We propose a novel dynamical method for beating decoherence and dissipation in open quantum system e...
We investigate the relationship between non-Markovianity and the effectiveness of a dynamical decoup...
We study dynamical decoupling in a multiqubit setting, where it is combined with quantum logic gates...
Suppressing decoherence is one of the most challenging problems in the control of quantum dynamical ...
Controllability - the possibility of performing any target dynamics by applying a set of available o...
We discuss a few mathematical aspects of random dynamical decoupling, a key tool procedure in quantu...
We revisit the method of dynamical decoupling via open-loop control for protecting quantum systems a...
A long-standing challenge in the foundations of quantum mechanics is the verification of alternative...
It is shown that if one can perform a restricted set of fast manipulations on a quantum system, one ...
Introduction In this chapter we continue the introduction to dynamical decoupling techniques for ope...
For finite-dimensional quantum systems, such as qubits, a well established strategy to protect such ...
We investigate the possibility to suppress interactions between a finite dimensional system and an i...
In the field of quantum information, a major challenge is to protect and shield quantum systems from...
Speeding up the dynamics of a quantum system is of paramount importance for quantum technologies. Ho...
Dynamical decoupling is a key method to mitigate errors in a quantum mechanical system, and we studi...
We propose a novel dynamical method for beating decoherence and dissipation in open quantum system e...
We investigate the relationship between non-Markovianity and the effectiveness of a dynamical decoup...
We study dynamical decoupling in a multiqubit setting, where it is combined with quantum logic gates...
Suppressing decoherence is one of the most challenging problems in the control of quantum dynamical ...
Controllability - the possibility of performing any target dynamics by applying a set of available o...
We discuss a few mathematical aspects of random dynamical decoupling, a key tool procedure in quantu...
We revisit the method of dynamical decoupling via open-loop control for protecting quantum systems a...
A long-standing challenge in the foundations of quantum mechanics is the verification of alternative...
It is shown that if one can perform a restricted set of fast manipulations on a quantum system, one ...
Introduction In this chapter we continue the introduction to dynamical decoupling techniques for ope...