The Heisenberg scaling is typically associated with nonclassicality and entanglement. In this work, however, we discuss how classical long-range correlations between lattice sites in many-body systems may lead to a 1=N scaling in precision with the number of probes in the context of quantum optical dissipative systems. In particular, we show that networks of coupled single qubit lasers can be mapped onto a classical XY model, and a Heisenberg scaling with the number of sites appears when estimating the amplitude and phase of a weak periodic driving field
International audienceWe study the spreading of information in a wide class of quantum systems, with...
We consider a dynamic protocol for quantum many-body systems, which enables us to study the interpla...
The prominent collective character of long-range interacting quantum systems makes them promising ca...
In quantum metrology, nonlinear many-body interactions can enhance the precision of Hamiltonian para...
Driven-dissipative quantum many-body systems have attracted increasing interest in recent years as t...
We study the nonequilibrium dynamics of correlations in quantum lattice models in the presence of lo...
Driven-dissipative quantum many-body systems have attracted increasing interest in recent years as t...
The competition between interactions and dissipative processes in a quantum many-body system can dri...
We study the estimation precision attainable by entanglement-enhanced Ramsey interferometry in the p...
We study the spatio-temporal spreading of correlations in an ensemble of spins due to dissipation ch...
Phase transitions represent a compelling tool for classical and quantum sensing applications. It has...
Trapping ultracold atoms in optical lattices enabled numerous breakthroughs uniting several discipli...
It is well known that the notions of spatial locality are often lost in quantum systems with long-ra...
We examine the results of the paper “Precision metrology using weak measurements” (Zhang et al. arXi...
We analyze the dynamics of various kinds of correlations present between two initially entangled ind...
International audienceWe study the spreading of information in a wide class of quantum systems, with...
We consider a dynamic protocol for quantum many-body systems, which enables us to study the interpla...
The prominent collective character of long-range interacting quantum systems makes them promising ca...
In quantum metrology, nonlinear many-body interactions can enhance the precision of Hamiltonian para...
Driven-dissipative quantum many-body systems have attracted increasing interest in recent years as t...
We study the nonequilibrium dynamics of correlations in quantum lattice models in the presence of lo...
Driven-dissipative quantum many-body systems have attracted increasing interest in recent years as t...
The competition between interactions and dissipative processes in a quantum many-body system can dri...
We study the estimation precision attainable by entanglement-enhanced Ramsey interferometry in the p...
We study the spatio-temporal spreading of correlations in an ensemble of spins due to dissipation ch...
Phase transitions represent a compelling tool for classical and quantum sensing applications. It has...
Trapping ultracold atoms in optical lattices enabled numerous breakthroughs uniting several discipli...
It is well known that the notions of spatial locality are often lost in quantum systems with long-ra...
We examine the results of the paper “Precision metrology using weak measurements” (Zhang et al. arXi...
We analyze the dynamics of various kinds of correlations present between two initially entangled ind...
International audienceWe study the spreading of information in a wide class of quantum systems, with...
We consider a dynamic protocol for quantum many-body systems, which enables us to study the interpla...
The prominent collective character of long-range interacting quantum systems makes them promising ca...