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Entanglement is a powerful concept with an enormous potential for scientific and technological advances.
Greenberger, D. M., Horne, M. A. and Zeilinger, A. in Bell’s Theorem, Quantum Theory, and Conceptions of the Universe
1989
Earlier work this paper cites.
Bennett, C. H. and DiVincenzo, D. P., Quantum information and computation. Nature 404
2000
Earlier work this paper cites.
Sackett, C. A. et al. Experimental entanglement of four particles. Nature 404
2000
Earlier work this paper cites.
Raussendorf, R. and Briegel, H. J., A one-way quantum computer. Phys. Rev. Lett. 86
2001
Earlier work this paper cites.
Schön, C. et al. Sequential generation of entangled multiqubit states. Phys. Rev. Lett. 95
2005
Earlier work this paper cites.
Walther, P. et al. Experimental one-way quantum computing. Nature 434
2005
Earlier work this paper cites.
Tóth, G. and Gühne, O., Detecting genuine multipartite entanglement with two local measurements. Phys. Rev. Lett. 94
2005
Earlier work this paper cites.
Hein, M. et al. in Quantum Computers, Algorithms and Chaos
2006
Earlier work this paper cites.
Gühne, O., Lu, C.-Y., Gao, W.-B. and Pan, J.-W., Toolbox for entanglement detection and fidelity estimation. Phys. Rev. A 76
2007
Earlier work this paper cites.
Raussendorf, R. and Harrington, J., Fault-tolerant quantum computation with high threshold in two dimensions. Phys. Rev. Lett. 98
2007
Earlier work this paper cites.
Wilk, T., Quantum interface between an atom and a photon. TUM/MPQ thesis (2008)
2008
Earlier work this paper cites.
Varnava, M., Browne, D. E., and Rudolph T., How good must single photon sources and detectors be for efficient linear optical quantum computation? Phys. Rev. Lett. 100
2008
Earlier work this paper cites.
Lindner, N. H. and Rudolph, T., Proposal for pulsed on-demand sources of photonic cluster state strings. Phys. Rev. Lett. 103
2009
Earlier work this paper cites.
Briegel, H. J., Browne, D. E., Dür, W., Raussendorf, R. and Van den Nest, M., Measurement-based quantum computation. Nature Phys 5
2009
Earlier work this paper cites.
Barrett, S. D. and Stace, T. M., Fault tolerant quantum computation with very high threshold for loss errors. Phys. Rev. Lett. 105
2010
Cited alongside, same era.
Yao, X.-C. et al. Experimental demonstration of topological error correction. Nature 482, 489–494 (2012)
2012
Cited alongside, same era.
Zwerger, M., Dür, W., and Briegel, H. J., Measurement-based quantum repeaters. Phys. Rev. A 85
2012
Cited alongside, same era.
Lanyon, B. P. et al. Measurement-based quantum computation with trapped ions. Phys. Rev. Lett. 111
2013
Cited alongside, same era.
Reiserer, A. and Rempe, G., Cavity-based quantum networks with single atoms and optical photons. Rev. Mod. Phys. 87
2015
Cited alongside, same era.
Morin, O., Körber, M., Langenfeld, S. and Rempe, G., Deterministic shaping and reshaping of single-photon temporal wave functions. Phys. Rev. Lett. 123
2019
Later among the works it cites.
Istrati, D. et al. Sequential generation of linear cluster states from a single photon emitter. Nat Commun 11
2020
Later among the works it cites.
Borregaard, J. et al. One-way quantum repeater based on near-deterministic photon-emitter interfaces. Phys. Rev. X 10
2020
Later among the works it cites.
Besse, J.-C. et al. Realizing a deterministic source of multipartite-entangled photonic qubits. Nat Commun 11
2020
Later among the works it cites.
2021
Later among the works it cites.
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2016
Cited alongside, same era.
Senellart, P., Solomon, G. and White, A., High-performance semiconductor quantum-dot single-photon sources. Nat. Nanotechnol. 12
2017
Cited alongside, same era.
Preskill, J., Quantum computing in the NISQ era and beyond. Quantum 2
2018
Cited alongside, same era.
Zhong, H.-S. et al. 12-photon entanglement and scalable scattershot boson sampling with optimal entangled-photon pairs from parametric down-conversion. Phys. Rev. Lett. 121
2018
Cited alongside, same era.
Welte, S. et al. Photon-mediated quantum gate between two neutral atoms in an optical cavity. Phys. Rev. X 8
2018
Cited alongside, same era.
Russo, A., Barnes, E. and Economou, S., Generation of arbitrary all-photonic graph states from quantum emitters. New J. Phys. 21
2019
Cited alongside, same era.
Omran, A. et al. Generation and manipulation of Schrödinger cat states in Rydberg atom arrays. Science 365
2019
Cited alongside, same era.
Langenfeld, S., Thomas, P., Morin, O., and Rempe, G., Quantum repeater node demonstrating unconditionally secure key distribution. Phys. Rev. Lett. 126
2021
Later among the works it cites.
Daiss, S. et al. A quantum-logic gate between distant quantum-network modules. Science 371
2021
Later among the works it cites.
Pogorelov, I. et al. Compact ion-trap quantum computing demonstrator. PRX Quantum 2
2021
Later among the works it cites.
Schupp, J. et al. Interface between trapped-ion qubits and traveling photons with close-to-optimal efficiency. PRX Quantum 2
2021
Later among the works it cites.
Tomm, N. et al. A bright and fast source of coherent single photons. Nat. Nanotechnol. 16
2021
Later among the works it cites.
2021
Later among the works it cites.
Stolz, T. et al. A quantum-logic gate between two optical photons with an efficiency above 40%. Phys. Rev. X 12
2022
Closest in time.
Knall, E. et al. Efficient source of shaped single photons based on an integrated diamond nanophotonic system. ArXiv preprint 2201.02731 (2022)
2022
Closest in time.