@article{VYURM_2022_14_1_a7,
author = {M. S. Podoshvedov and S. A. Podoshvedov and A. P. Alodjants and S. P. Kulik},
title = {Promising quantum engineering of optical even/odd {Schr\"odinger} cat states},
journal = {Vestnik \^U\v{z}no-Uralʹskogo gosudarstvennogo universiteta. Seri\^a, Matematika, mehanika, fizika},
pages = {77--85},
year = {2022},
volume = {14},
number = {1},
language = {en},
url = {http://geodesic.mathdoc.fr/item/VYURM_2022_14_1_a7/}
}
TY - JOUR AU - M. S. Podoshvedov AU - S. A. Podoshvedov AU - A. P. Alodjants AU - S. P. Kulik TI - Promising quantum engineering of optical even/odd Schrödinger cat states JO - Vestnik Ûžno-Uralʹskogo gosudarstvennogo universiteta. Seriâ, Matematika, mehanika, fizika PY - 2022 SP - 77 EP - 85 VL - 14 IS - 1 UR - http://geodesic.mathdoc.fr/item/VYURM_2022_14_1_a7/ LA - en ID - VYURM_2022_14_1_a7 ER -
%0 Journal Article %A M. S. Podoshvedov %A S. A. Podoshvedov %A A. P. Alodjants %A S. P. Kulik %T Promising quantum engineering of optical even/odd Schrödinger cat states %J Vestnik Ûžno-Uralʹskogo gosudarstvennogo universiteta. Seriâ, Matematika, mehanika, fizika %D 2022 %P 77-85 %V 14 %N 1 %U http://geodesic.mathdoc.fr/item/VYURM_2022_14_1_a7/ %G en %F VYURM_2022_14_1_a7
M. S. Podoshvedov; S. A. Podoshvedov; A. P. Alodjants; S. P. Kulik. Promising quantum engineering of optical even/odd Schrödinger cat states. Vestnik Ûžno-Uralʹskogo gosudarstvennogo universiteta. Seriâ, Matematika, mehanika, fizika, Tome 14 (2022) no. 1, pp. 77-85. http://geodesic.mathdoc.fr/item/VYURM_2022_14_1_a7/
[1] M.S. Kim, W. Son, V. Bužek, P.L. Knight, “Entanglement by a Beam Splitter: Nonclassicality as a Prerequisite for Entanglement”, Phys. Rev. A, 65:3 (2002), 032323
[2] C.K. Hong, Z.Y. Ou, L. Mandel, “Measurement of Subpicosecond Time Intervals between Two Photons by Interference”, Phys. Rev. Lett., 59:18 (1987), 2044–2046
[3] M. Dakna, T. Anhut, T. Opatrny et al., “Generating Schrödinger Cat-Like States by means of Conditional Measurement of a Beam Splitter”, Phys. Rev. A, 55:4 (1997), 3184–3194
[4] S.A. Podoshvedov, “Schemes for Performance od Displacing Hadamard Gate with Coherent States”, Optics Communications, 285:18 (2012), 3896–3905
[5] R. Carranza, C.C. Gerry, “Photon-Subtracted Two-Mode Squeezed Vacuum States and Applications to Quantum Optical Interferometry”, Journal of the Optical Society of America B, 29:9 (2012), 2581–2587
[6] S.A. Podoshvedov, “Elementary Quantum Gates in Different Bases”, Quantum Information Processing, 15:10 (2016), 3967–3993
[7] M. Dakna, L. Knöll, D.G. Welsch, “Photon-Added State Preparation via Conditional Measurement on a beam Splitter”, Optics Communications, 145:1–6 (1998), 309–321
[8] A.I. Lvovsky, J. Mlynek, “Quantum-Optical Catalysis: Generating Nonclassical States of Light by means of Linear Optics”, Phys. Rev. Lett., 88:25 (2002), 250401
[9] T.J. Bartley, G. Donati, J.B. Spring et al., “Multiphoton State Engineering by Heralded Interference Between Single Photons and Coherent States”, Phys. Rev. A, 86:4 (2012), 043820
[10] D.J. Wineland, “Nobel Lecture: Superposition, Entanglement, and Raising Schrödinger's Cat”, Rev. Mod. Phys., 85:3 (2013), 1103–1114
[11] A.J. Leggett, “Testing the Limits of Quantum Mechanics: Motivation, State of Play, Prospects”, Journal of Physics: Condensed Matter., 14:15 (2002), R415–R451
[12] S.J. van Enk, O. Hirota, “Entangled Coherent States: Teleportation and Decoherence”, Phys. Rev. A, 64:2 (2001), 022313
[13] H. Jeong, M.S. Kim, “Efficient Quantum Computation Using Coherent States”, Phys Rev. A, 65:4 (2002), 042305
[14] N.B. An, “Teleportation of Coherent-State Superpositions within a Network”, Phys. Rev., 68:2 (2003), 022321
[15] S.A. Podoshvedov, “Efficient Quantum Teleportation of Unknown Qubit Based on DV-CV Interaction Mechanism”, Entropy, 21:2 (2019), 150
[16] J. Joo, W.J. Munro, T.P. Spiller, “Quantum Metrology with Entangled Coherent States”, Phys. Rev. Lett., 107:8 (2011), 083601 | DOI
[17] T.C. Ralph, A. Gilchrist, G.J. Milburn et al., “Quantum Computation with Optical Coherent States”, Phys. Rev. A, 68:4 (2003), 042319
[18] A.P. Lund, T.C. Ralph, H.L. Haselgrove, “Fault-tolerant linear optical quantum computing with small-amplitude coherent states”, Phys. Rev. Lett., 100:3 (2007), 030503
[19] D. Fukuda, G. Fujii, T. Numata et al., “Titanium-Based Transition-Edge Photon Number Resolving Detector with 98% Detection Efficiency with Index-Matched Small-Gap Fiber Coupling”, Optics Express, 19:2 (2011), 870–875
[20] Yu.I. Bogdanov, K.G. Katamadze, G.V. Avosopiants, “Multiphoton subtracted thermal states: Description, preparation, and reconstruction”, Phys. Rev. A, 96:6 (2017), 063803
[21] K.G. Katamadze, G.V. Avosopiants, N.A. Bogdanova, “Multimode Thermal States with Multiphoton Subtraction: Study of the Photon-Number Distribution in the Selected Subsystem”, Physical Review A, 101:1 (2020), 013811