|
|
|
|
Литература
|
|
| |
| 1. |
Nielsen M. A., Chuang I. L., Quantum Computation and Quantum Information, Cambridge Univ. Press, Cambridge, UK, 2000, 1000 pp. |
| 2. |
Cirac J. I., Zoller P., Kimble H. J., Mabuchi H., “Quantum State Transfer and Entanglement Distribution among Distant Nodes in a Quantum Network”, Phys. Rev. Lett., 78 (1997), 3221–3224 |
| 3. |
Duan L. M., Cirac J. I., Zoller P., Polzik E. S., “Quantum Communication between Atomic Ensembles Using Coherent Light”, Phys. Rev. Lett., 85 (2000), 5643–5646 |
| 4. |
Kuzmich A., Polzik E. S., “Atomic Quantum State Teleportation and Swapping”, Phys. Rev. Lett., 85 (2000), 5639–5642 |
| 5. |
Fleischhauer M., Lukin M. D., “Dark-State Polaritons in Electromagnetically Induced Transparency”, Phys. Rev. Lett., 84 (2000), 5094–5097 |
| 6. |
Moiseev S. A., Kroll S., “Complete Reconstruction of the Quantum State of a Single-Photon Wave Packet Absorbed by a Doppler-Broadened Transition”, Phys. Rev. Lett., 87 (2001), 173601–173605 |
| 7. |
Liu C., Dutton Z., Behroozi C. H., Hau L. V., “Observation of coherent optical information storage in an atomic medium using halted light pulses”, Nature, 409 (2001), 490–492 |
| 8. |
Philips D. F., Fleischhauer A., Mair A., “Storage of Light in Atomic Vapor”, Phys. Rev. Lett., 86 (2001), 783–786 |
| 9. |
Eisaman M. D., Andre A., Massou F., Fleischhauer M., Zibrov A. S., Lukin M. D., “Electromagnetically induced transparency with tunable single-photon pulses”, Nature, 438 (2005), 837–840 |
| 10. |
Chaneliere T., Matsukevich D., Jenkins S. D., Lan S.-Y., Kennedy T. A. B., Kuzmich A., “Storage and retrieval of single photons transmitted between remote quantum memories”, Nature, 438 (2005), 833–835 |
| 11. |
Choi K. S., Deng H., Laurat J., Kimble H. J., “Mapping photonic entanglement into and out of a quantum memory”, Nature, 452 (2008), 67–71 |
| 12. |
Moiseev S. A., “Photon-echo-based quantum memory of arbitrary light field states”, J. Phys. B At. Mol. Opt. Phys., 40 (2007), 3877–3890 |
| 13. |
Moiseev S. A., Tarasov V. F., Ham B. S., “Quantum memory photon echo-like techniques in solids”, J. Opt. B Quantum Semiclass. Opt., 5 (2003), S497–S500 |
| 14. |
Alexander A. L., Longdell J. J., Sellars M. J., ACOFT/AOS Proceedings, Univ. Press, Sydney, 2004, 120 pp. |
| 15. |
Nilsson M., Kroll S., “Solid state quantum memory using complete absorption and reemission of photons by tailored and externally controlled inhomogeneous absorption profiles”, Opt. Commun., 247 (2005), 393–403 |
| 16. |
Alexander A. L., Longdell J. J., Sellars M. J., Manson N. B., “Photon Echoes Produced by Switching Electric Fields”, Phys. Rev. Lett., 96 (2006), 043602–043610 |
| 17. |
Kraus B., Tittel W., Gisin N., Nilsson M., Kroll S., Cirac J. I., “Quantum memory for nonstationary light fields based on controlled reversible inhomogeneous broadening”, Phys. Rev. A, 73 (2006), 020302(R)-1–020306(R)-4 |
| 18. |
Kalachev A., Kröll S., “Coherent control of collective spontaneous emission in an extended atomic ensemble and quantum storage”, Phys. Rev. A, 74 (2006), 023814-1–023814-10 |
| 19. |
Appel J., Figueroa E., Korystov D., Lobino M., Lvovsky A. I., “Quantum Memory for Squeezed Light”, Phys. Rev. Lett., 100 (2009), 093602-1–093602-4 |
| 20. |
Hosseini M., Sparkes B. M., Hétet G., Longdell J. J., Lam P. K., Buchler B. C., “A coherent optical pulse sequencer for quantum applications”, Nature, 461 (2009), 241–245 |
| 21. |
Hétet G., Hosseini M., Sparkes B. M., Oblak D., Lam P. K., Buchler B. C., “Photon echoes generated by reversing magnetic field gradients in a rubidium vapor”, Opt. Lett., 33 (2008), 2323–2330 |
| 22. |
Moiseev S. A., Tittel W., Optical quantum memory with generalized time-reversible atom-light interactions, Quantum Phys., 2009, arXiv: 0812.1730v2[quant-ph] |
| 23. |
de Riedmatten H., Afzelius M., Staudt M. U., Simon C., Gisin N., “A solid-state light – matter interface at the single-photon level”, Nature, 456 (2008), 773–775 |
| 24. |
Nunn J., Reim K., Lee K. C., Lorenz V. O., Sussman B. J., Walmsley I. A., Jaksch D., “Multimode Memories in Atomic Ensembles”, Phys. Rev. Lett., 101 (2008), 260502-1–260502-4 |
| 25. |
Alexander A. L., Longdell J. J., Sellars M. J., Manson N. B., “Coherent information storage with photon echoes produced by switching electric fields”, J. Lumin., 127 (2007), 94–97 |
| 26. |
Hétet G., Longdell J. J., Alexander A. L., Lam P. K., Sellars M. J., “Electro-Optic Quantum Memory for Light Using Two-Level Atoms”, Phys. Rev. Lett., 100 (2008), 023601-1–023601-4 |
| 27. |
Moiseev S. A., Arslanov N. M., “Efficiency and fidelity of photon-echo quantum memory in an atomic system with longitudinal inhomogeneous broadening”, Phys. Rev. A, 78 (2008), 023803-1–023803-23 |
| 28. |
Hétet G., Longdell J. J., Sellars M. J., Lam P. K., Buchler B. C., “MultiModal Properties and Dynamics of Gradient Echo Quantum Memory”, Phys. Rev. Lett., 101 (2008), 203601-1–203601-4 |
| 29. |
Арсланов Н. М., Васильев А. В., Моисеев С. А., Аблаев Ф. М., “Реализация квантового алгоритма “MODm” на основе использования квантовой памяти на фотонном эхе”, Когерентная оптика и оптическая спектроскопия, Казан. гос. ун-т, Казань, 2008, 25–30 |
| 30. |
Сайдашева И. Ш., Арсланов Н. М., Моисеев С. А., “Моделирование фотонного эха в среде с управляемым градиентом: возможность достижения эффективной квантовой памяти”, IV Междунар. Оптический Конгресс “Оптика – XXI век”, Сб. тез., С.-Петерб. гос. ун-т информ. технологий, механики и оптики, СПб., 2006, 137 |
| 31. |
Moiseev S. A., Arslanov N. M., “Selective multimodes quantum memory based on the photon echo”, Наука и инновации – 2007, Изд-во Мар. гос. ун-та, Йошкар Ола, 2007, 8–20 |
| 32. |
Gisin N., Ribordy G., Tittel W., Zbinden H., “Quantum cryptography”, Rev. Mod. Phys., 74 (2002), 145–150 |
| 33. |
Gisin N., Moiseev S. A., Simon C., “Storage and retrieval of time-bin qubits with photon-echo-based quantum memories”, Phys. Rev. A, 76 (2007), 014302-1–014302-18 |
| 34. |
Moiseev S. A., Tittel W., “Quantum Compression and Decompression of Light Pulses based on Photon Echo with Generalized CRIB”, QCMC 2008, The IX Int. Conf. on Quantum communication, Measurement and Computing, Univ. of Calgary, Alberta, Canada, 2009, 260–284 |