We show how many-body ground state entanglement information may be extracted from sub-system energy measurements at zero temperature. A precise relation between entanglement and energy fluctuations is demonstrated in the weak coupling limit. Examples are given with the two-state system and the harmonic oscillator, and energy probability distributions are calculated. Comparisons made with recent qubit experiments show this type of measurement provides another method to quantify entanglement with the environment
The concept of local concurrence is used to quantify the entanglement between a single qubit and the...
Theoretical understanding of the scaling of entropies and the mutual information in quantum many-bod...
Our goal is to clarify the relation between entanglement and correlation energy in a bipartite syste...
We show how many-body ground state entanglement information may be extracted from subsystem energy m...
We show how many-body ground state entanglement information may be extracted from subsystem energy m...
We consider the ground state of simple quantum systems coupled to an environment. In general the sys...
A simple two-qubit model showing quantum phase transitions as a consequence of ground-state-level cr...
A simple two-qubit model showing Quantum Phase Transitions as a consequence of ground state level cr...
We find the minimum and the maximum value for the local energy of an arbitrary finite bipartite syst...
We demonstrate that the presence of entanglement in macroscopic bodies (e.g., solids) in thermodynam...
We show that entanglement can always arise in the interaction of an arbitrarily large system in any ...
We show that entanglement can always arise in the interaction of an arbitrarily large system in any ...
Two non-directly interacting qubits with equal frequencies can become entangled via a Markovian, dis...
To build quantum computer or any other quan-tum device we need to maintain quantum con-trol. Entangl...
We consider an open quantum system of N not directly interacting spins qubits in contact with both ...
The concept of local concurrence is used to quantify the entanglement between a single qubit and the...
Theoretical understanding of the scaling of entropies and the mutual information in quantum many-bod...
Our goal is to clarify the relation between entanglement and correlation energy in a bipartite syste...
We show how many-body ground state entanglement information may be extracted from subsystem energy m...
We show how many-body ground state entanglement information may be extracted from subsystem energy m...
We consider the ground state of simple quantum systems coupled to an environment. In general the sys...
A simple two-qubit model showing quantum phase transitions as a consequence of ground-state-level cr...
A simple two-qubit model showing Quantum Phase Transitions as a consequence of ground state level cr...
We find the minimum and the maximum value for the local energy of an arbitrary finite bipartite syst...
We demonstrate that the presence of entanglement in macroscopic bodies (e.g., solids) in thermodynam...
We show that entanglement can always arise in the interaction of an arbitrarily large system in any ...
We show that entanglement can always arise in the interaction of an arbitrarily large system in any ...
Two non-directly interacting qubits with equal frequencies can become entangled via a Markovian, dis...
To build quantum computer or any other quan-tum device we need to maintain quantum con-trol. Entangl...
We consider an open quantum system of N not directly interacting spins qubits in contact with both ...
The concept of local concurrence is used to quantify the entanglement between a single qubit and the...
Theoretical understanding of the scaling of entropies and the mutual information in quantum many-bod...
Our goal is to clarify the relation between entanglement and correlation energy in a bipartite syste...