We propose a physical model for generating multipartite entangled states of spin-s particles that have important applications in distributed quantum information processing. Our protocol is based on a process where mobile spins induce the interaction among remote scattering centers. As such, a major advantage lies in the management of stationary and well-separated spins. Among the generable states, there is a class of N-qubit singlets allowing for optimal quantum telecloning in a scalable and controllable way. We also show how to prepare Aharonov, W, and Greenberger-Horne-Zeilinger states
We propose a deterministic scheme of generating genuine multiparty entangled states in quantum netwo...
Herein, we present a feasible, general protocol for quantum communication within a network via gener...
We present a protocol that sets maximum stationary entanglement between remote spins through scatter...
We propose a physical model for generating multipartite entangled states of spin-s particles that ha...
We investigate creation, manipulation, and steering of entanglement in spin chains from the viewpoin...
The distribution of entangled states across the nodes of a future quantum internet will unlock funda...
Understanding of how quantum states relate to their environment is vital in order to realize quantum...
In many protocols for distributed quantum information processing, pairwise entanglement is a key res...
The generation of genuine multipartite entangled states is challenging in practice. Here we explore ...
Entangled quantum states are remarkably rich resources for communication and computation. Today, we ...
Scalable quantum networks require the capability to create, store and distribute entanglement among ...
We present a generalization of quantum teleportation that distributes quantum information from a sen...
We study the performance (rate and fidelity) of distributing multipartite entangled states in a quan...
In this paper, we investigate novel protocols for the joint remote state preparation involving sever...
It is pointed out that the possibility of teleporting an arbitrary unknown one-particle spin state i...
We propose a deterministic scheme of generating genuine multiparty entangled states in quantum netwo...
Herein, we present a feasible, general protocol for quantum communication within a network via gener...
We present a protocol that sets maximum stationary entanglement between remote spins through scatter...
We propose a physical model for generating multipartite entangled states of spin-s particles that ha...
We investigate creation, manipulation, and steering of entanglement in spin chains from the viewpoin...
The distribution of entangled states across the nodes of a future quantum internet will unlock funda...
Understanding of how quantum states relate to their environment is vital in order to realize quantum...
In many protocols for distributed quantum information processing, pairwise entanglement is a key res...
The generation of genuine multipartite entangled states is challenging in practice. Here we explore ...
Entangled quantum states are remarkably rich resources for communication and computation. Today, we ...
Scalable quantum networks require the capability to create, store and distribute entanglement among ...
We present a generalization of quantum teleportation that distributes quantum information from a sen...
We study the performance (rate and fidelity) of distributing multipartite entangled states in a quan...
In this paper, we investigate novel protocols for the joint remote state preparation involving sever...
It is pointed out that the possibility of teleporting an arbitrary unknown one-particle spin state i...
We propose a deterministic scheme of generating genuine multiparty entangled states in quantum netwo...
Herein, we present a feasible, general protocol for quantum communication within a network via gener...
We present a protocol that sets maximum stationary entanglement between remote spins through scatter...