Parallel remote state preparation of arbitrary single-qubit states via linear-optical elements by using hyperentangled Bell states as the quantum channel
DOI10.1007/s11128-018-2067-7zbMath1402.81079OpenAlexW2893179361WikidataQ129193739 ScholiaQ129193739MaRDI QIDQ1994757
Xian-Fang Jiao, Shu-Xin Lv, Ping Zhou
Publication date: 1 November 2018
Published in: Quantum Information Processing (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1007/s11128-018-2067-7
Quantum optics (81V80) Quantum measurement theory, state operations, state preparations (81P15) Physical optics (78A10) Quantum coherence, entanglement, quantum correlations (81P40) Quantum information, communication, networks (quantum-theoretic aspects) (81P45)
Related Items (7)
Cites Work
- Linear-optics-based bidirectional controlled remote state preparation via five-photon cluster-type states for quantum communication network
- Two efficient schemes for probabilistic remote state preparation and the combination of both schemes
- Joint remote preparation of arbitrary two- and three-photon state with linear-optical elements
- Practical entanglement concentration of nonlocal polarization-spatial hyperentangled states with linear optics
- Refined hyperentanglement purification of two-photon systems for high-capacity quantum communication with cavity-assisted interaction
- Effect of quantum noise on deterministic remote state preparation of an arbitrary two-particle state via various quantum entangled channels
- Simultaneous perfect teleportation of three 2-qubit states
- Remote preparation of an arbitrary multi-qubit state via two-qubit entangled states
- Hyperentanglement concentration of nonlocal two-photon six-qubit systems with linear optics
- Quantum cryptography based on Bell’s theorem
- Communication via one- and two-particle operators on Einstein-Podolsky-Rosen states
This page was built for publication: Parallel remote state preparation of arbitrary single-qubit states via linear-optical elements by using hyperentangled Bell states as the quantum channel