Quantum chaotic maps can efficiently generate pseudorandom states carrying almost maximal multipartite entanglement, as characterized by the probability distribution of bipartite entanglement between all possible bipartitions of the system. We show that such multipartite entanglement is robust, in the sense that, when realistic noise is considered, distillable entanglement of bipartitions remains almost maximal up to a noise strength that drops only polynomially with the number of qubits. © 2008 The American Physical Society
Ensuring the correct functioning of quantum error correction (QEC) circuits is crucial to achieve fa...
We explore the dynamics of entanglement in classically chaotic systems by considering a multiqubit s...
We devise a novel protocol to detect genuinely multipartite entangled states by harnessing quantum n...
Quantum chaotic maps can efficiently generate pseudorandom states carrying almost maximal multiparti...
Quantum chaotic maps can efficiently generate pseudorandom states carrying almost maximal multiparti...
We propose a deterministic scheme of generating genuine multiparty entangled states in quantum netwo...
The study of entanglement in multipartite quantum states plays a major role in quantum information t...
Quantum networks are under current active investigation for the implementation of quantum communicat...
The study of entanglement in multipartite quantum states plays a major role in quantum information t...
In the quest to completely describe entanglement in the general case of a finite number of parties s...
The generation of a large amount of entanglement is a necessary condition for a quantum computer to ...
We introduce the notion of maximally multipartite entangled states of n qubits as a generalization o...
We examine a simple scheme to generate genuine multipartite entangled states across disjoint qubit r...
Recent results [A. Lakshminarayan, Phys. Rev. E, vol.64, Page no. 036207 (2001)] indicate that it is...
We demonstrate to what extent many copies of maximally entangled two-qubit states enable for generat...
Ensuring the correct functioning of quantum error correction (QEC) circuits is crucial to achieve fa...
We explore the dynamics of entanglement in classically chaotic systems by considering a multiqubit s...
We devise a novel protocol to detect genuinely multipartite entangled states by harnessing quantum n...
Quantum chaotic maps can efficiently generate pseudorandom states carrying almost maximal multiparti...
Quantum chaotic maps can efficiently generate pseudorandom states carrying almost maximal multiparti...
We propose a deterministic scheme of generating genuine multiparty entangled states in quantum netwo...
The study of entanglement in multipartite quantum states plays a major role in quantum information t...
Quantum networks are under current active investigation for the implementation of quantum communicat...
The study of entanglement in multipartite quantum states plays a major role in quantum information t...
In the quest to completely describe entanglement in the general case of a finite number of parties s...
The generation of a large amount of entanglement is a necessary condition for a quantum computer to ...
We introduce the notion of maximally multipartite entangled states of n qubits as a generalization o...
We examine a simple scheme to generate genuine multipartite entangled states across disjoint qubit r...
Recent results [A. Lakshminarayan, Phys. Rev. E, vol.64, Page no. 036207 (2001)] indicate that it is...
We demonstrate to what extent many copies of maximally entangled two-qubit states enable for generat...
Ensuring the correct functioning of quantum error correction (QEC) circuits is crucial to achieve fa...
We explore the dynamics of entanglement in classically chaotic systems by considering a multiqubit s...
We devise a novel protocol to detect genuinely multipartite entangled states by harnessing quantum n...