1. Gu X., Kockum A.F., Miranowicz A., Liu Y.X., Nori F. Microwave photonics with superconducting quantum circuits // Physics Reports. 2017. Vol. 718-719. Pp. 1-102. DOI: 10.1016/j.physrep.2017.10.002 EDN: TECRZL
2. Xiang Z.-L. Ashhab S., You J.Q., Nori F. Hybrid quantum circuits: Superconducting circuits interacting with other quantum systems // Review of Modern Physics. 2013. Vol. 85, Issue 2. Pp. 623-653. DOI: 10.1103/RevModPhys.85.623 EDN: RJQAMF
3. Kjaergaard M., Schwartz M.E., J. Braumuller J., Krantz P., Wang J.-I., Gustavsson S., Oliver W.D. Superconducting Qubits: Current State of Play // Annual Review of Condensed Matter Physics. 2020. Vol. 11, Issue 1. Pp. 369-395. DOI: 10.1146/annurev-conmatphys-031119-050605 EDN: ECRMZU
4. Souza A.M., Sarthour R.S., Oliveira I.S. Entanglement in many body systems // Physica B: Condensed Matter. 2023. Vol. 653. P. 414511. DOI: 10.1016/j.physb.2022.414511 EDN: AQZKYY
5. Cole Daniel C., Erickson S.D., Wu J., Hou P., Wilson A., Leibfried D., Reiter F. Dissipative preparation of W states in trapped ion systems. // New Journal of Physics. 2021. Vol. 23. P. 073001. DOI: 10.1088/1367-2630/ac09c8 EDN: GWOIIA
6. Raimond J.M., Brune M., Haroche S. Manipulating quantum entanglement with atoms and photons in a cavity // Reviews of Modern Physics. 2001. Vol. 73, Issue 3. Pp. 565-582. DOI: 10.1103/RevModPhys.73.565 EDN: YKGMBR
7. Buluta I., Ashhab S., Nori F. Natural and artificial atoms for quantum computation // Reports of Progress in Physics. 2011. Vol. 74, Number 10. P. 104401. DOI: 10.1088/0034-4885/74/10/104401 EDN: PHMQQN
8. Georgescu I.M., Ashhab S., Nori F. Quantum simulation // Reviews of Modern Physics. 2014. Vol. 88, Issue 1. Pp. 153-185. DOI: 10.1103/RevModPhys.86.153 EDN: SQCURV
9. Jaynes E.T., Cummings F.W. Comparison of quantum and semiclassical radiation theories with application to the beam maser // Proceedings of the IEEE. 1963. Vol. 51, Issue 1. Pp. 89-109. DOI: 10.1109/PROC.1963.1664
10. Yoo H.Y., Eberly J.H. Dynamical theory of an atom with two and three levels interacting with quantized cavity fields // Physics Reports. 1985. Vol. 118, Issue 5. Pp. 239-337. DOI: 10.1016/0370-1573(85)90015-8 EDN: XURJXP
11. Shore B.W., Knight P.L. The Jaynes-Cummings model // Journal of Modern Optics. 1995. Vol. 40, Issue 7. Pp. 1195-1238. DOI: 10.1080/09500349314551321 EDN: YBYNPD
12. Faraji E., Tavassoly M.K., Baghshahi H.R. Entanglement Evolution Between Various Subsystems of Two Three-level Atoms Interacting with a Two-mode Quantized Field in the Presence of Converter Terms // International Journal of Theoretical Physics. 2016. Vol. 55. Pp. 2573-2587. DOI: 10.1007/s10773-015-2892-8 EDN: WSHGNN
13. Pakniat R., Tavassoly M.K., Zandi M.H. Dynamics of Information Entropies of Atom-Field Entangled States Generated via the Jaynes-Cummings Model // Communications in Theoretical Physics. 2016. Vol. 65, Number 3. Pp. 266-272. DOI: 10.1088/0253-6102/65/3/266 EDN: WPEFFD
14. Alexanian M., Bose S.K. Unitary transformation and the dynamics of a three-level atom interacting with two quantized field modes // Physical Review A. 1995. Vol. 52, Issue 3. Pp. 2218-2224. DOI: 10.1103/PhysRevA.52.2218 EDN: XSNSWV
15. Wu Y. Effective Raman theory for a three-level atom in the _ configuration // Physical Review A. 1996. Vol. 54, Issue 2. Pp. 1586-1592. DOI: 10.1103/PhysRevA.54.1586 EDN: XPIUPK
16. Wu Y., Yang X.X. Effective two-level model for a three-level atom in the _ configuration // Physical Review A. 1997. Vol. 56, Issue 3. Pp. 2443-2446. DOI: 10.1103/PhysRevA.56.2443
17. Bashkirov E.K. Dynamics of the Two-Atom Jaynes-Cummings Model with Nondegenerate Two-Photon Transitions // Laser Physics. 2006. Vol. 16. Pp. 1218-1226. DOI: 10.1134/S1054660X0608010X EDN: LKDVKJ
18. Gerry C.C., Eberly J.H. Dynamics of a Raman coupled model interacting with two quantized cavity fields // Physical Review A. 1990. Vol. 42, Issue 11. Pp. 6805-6815. DOI: 10.1103/PhysRevA.42.6805 EDN: XOQTOT
19. Gerry C.C., Huang H. Dynamics of a two-atom Raman coupled model interacting with two quantized cavity fields // Physical Review A. 1992. Vol. 45, Issue 11. Pp. 8037-8044. DOI: 10.1103/PhysRevA.45.8037 EDN: SJOZXU
20. Bashkirov E.K. Entanglement induced by the two-mode thermal noise // Laser Physics Letters. 2006. Vol. 3, Issue 3. Pp. 145-150. DOI: 10.1002/lapl.200510081 EDN: LJNXSZ
21. Singh S., Gilhare K. Dynamics for a Two-Atom Two-Mode Intensity-Dependent Raman Coupled Model // Journal of Experimental and Theoretical Physics. 2016. Vol. 122. Pp. 984-994. DOI: 10.1134/S1063776116050216
22. Gerry C.C. Degenerate Raman coupled model interacting with two quantized cavity fields // Physics Letters A. 1991. Vol. 161, Issue 1. Pp. 9-12. DOI: 10.1016/0375-9601(91)90535-g EDN: XXQAVJ
23. Song T.-Q., Feng J., Wang M.-Z., Xu J.-Z. Effects of the relative coupling constants on the dynamic properties of a two-atom system // Physical Review A. 1995. Vol. 51, Issue 3. Pp. 2648-2550. DOI: 10.1103/PhysRevA.51.2648 EDN: XQSCPB
24. Башкиров Е.К., Сочкова Е.Ю. Перепутывание в двухатомной модели с вырожденными рамановскими переходами // Вестник Самарского государственного технического университета. Сер.: Физико-математические науки. 2011. Вып. 2(23). С. 135-141. DOI: 10.14498/vsgtu934 EDN: OZBCJN
25. Peres A. Separability Criterion for Density Matrices // Physical Review Letters. 1996. Vol. 77, Issue 8. Pp. 1413-1415. DOI: 10.1103/PhysRevLett.77.1413
26. Horodecki R., Horodecki M., Horodecki P. Separability of Mixed States: Necessary and Sufficient Condition // Physics Letters A. 1996. Vol. 223, Issues 1-2. Pp. 333-339. DOI: 10.1016/S0375-9601(96)00706-2
27. Wootters W.K. Entanglement of Formation of an Arbitrary State of Two Qubits // Physical Review Letters. 1998. Vol. 80, Issue 10. Pp. 2245-2248. DOI: 10.1103/PhysRevLett.80.2245