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82. — P. 3316–3319.48. Kéna-Cohen, S. Strong Exciton-Photon Coupling in an Organic Single CrystalMicrocavity / S. Kéna-Cohen, M. Davanço, S.R. Forrest // Phys Rev Lett. —2008. — V. 101. — P. 116401.49. Daskalakis, K.S. Nonlinear interactions in an organic polariton condensate / K.SDaskalakis, S.A. Maier, R.
Murray, S. Kéna-Cohen, // Nature Materials. —2014 .— V. 13.— P. 271–278.50. Plumhof, J.D. Room-temperature Bose–Einstein condensation of cavityexciton–polaritons in a polymer / J.D. Plumhof, T. Stöferle, L. Mai, U. Scherf,R.F. Mahrt // Nature Materials.— 2013. — V. 13. — P. 247–252.51. Christmann, Gabriel.
Room temperature polariton lasing in aGaN/AlGaNGaN/AlGaN multiple quantum well microcavity / Gabriel.Christmann, Raphaël Butté, Eric Feltin, Jean-François Carlin and NicolasGrandjean // Appl. Phys. Lett. — 2008. — V. 93.—P. 2966369.52. Tien-Chang, Lu. Room Temperature Current Injection Polariton Light EmittingDiode with a Hybrid Microcavity / Lu. Tien-Chang, Jun-Rong Chen, ShiangChi Lin, Si-Wei Huang, Shing-Chung Wang, and Yoshihisa Yamamoto // NanoLett. — 2011. — V. 11.
— P. 2791–2795.53. Schneider, C. An electrically pumped polariton laser / C. Schneider, A. RahimiIman,Na Young Kim, J. Fischer, I. G. Savenko, M. Amthor, M. Lermer, A.Wolf, L. Worschech, V. D. Kulakovskii, I. A. Shelykh, M. Kamp, S.Reitzenstein, A. Forchel, Y. Yamamoto & S.
Höfling // Nature — V. 497 — P.348–352.54. Marsault, F. Realization of an all optical exciton-polariton router / F. Marsault,H. S. Nguyen, D.Tanese, A. Lemaître, E. Galopin, I. Sagnes, A. Amol and J.Bloch // Appl. Phys. Lett. — 2015. —V. 107. — P. 201115.55. Flayac H. and I.
G. Savenko. An exciton-polariton mediated all-optical router //Appl. Phys. Lett. — 2013. — V. 103. — P. 201105.56. Gao, T. Polariton condensate transistor switch / T. Gao, P. S. Eldridge, T. C. H.Liew, S. I. Tsintzos, G. Stavrinidis, G. Deligeorgis, Z. Hatzopoulos, and P. G.Savvidis // Phys. Rev. B — 2012. — V. 85. — P. 235102.57.
Kavokin, K. V. Stimulated emission of terahertz radiation by exciton-polaritonlasers / K.V. Kavokin, M. A. Kaliteevski, R. A. Abram, A. V. Kavokin, S.Sharkova and I. A. Shelykh, // Appl. Phys. Lett.— 2010. — V. 97. — P. 201111.11058. Savenko I. G. Nonlinear Terahertz Emission in Semiconductor Microcavities /I. G.
Savenko, I. A. Shelykh, and M. A. Kaliteevski, // Phys. Rev. Lett. — 2011.— V. 107. — P. 027401.59. Liew T. C. H., A. V. Kavokin, and I. A. Shelykh. Optical Circuits Based onPolariton Neurons in Semiconductor Microcavities // Phys. Rev. Lett. — 2008.— V.
101. —P. 016402.60. Amo, A. Exciton–polariton spin switches / A. Amo, T. C. H. Liew, C. Adrados,R. Houdré, E. Giacobino, A. V. Kavokin & A. Bramati // Nat. Photon.— 2010.— V. 4. — P. 361-366.61. Oraevskii A.N. Features of the dynamics of lasers with a saturable absorber /Quantum Electonics— 2003. — V. 33.—P.
849.62. Fedorov, S.V. Effect of frequency detunings and finite relaxation rates on laserlocalized structures / S.V. Fedorov, A. G. Vladimirov, G. V. Khodova, and N.N. Rosanov // Phys. Rev. E — 2000. — V. 61.— P. 5814.63. Akhmediev, N. Dissipative Solitons: From Optics to Biology and MedicineLecture Notes Phys. Vol.
661 / N. Akhmediev and A. Ankiewicz.— Berlin:Springer, 2005.64. Akhmediev, N. Dissipative Solitons: From Optics to Biology and MedicineLecture Notes Phys. Vol. 751 / N. Akhmediev and A. Ankiewicz.— Berlin:Springer, 2008.65. Philipson, Paul E. and Peter Schuster. Modeling by Nonlinear DifferentialEquations: Dissipative and Conservative Processes. World Scientific Series onNonlinear Science Series A: Volume 69 / P. E. Phillipson and P. Schuster. —World Scientific Publishing Company, 2009— 240 p.66. Brogliato, B. Dissipative Systems Analysis and Control. Theory andApplications / B. Brogliato, R. Lozano, B. Maschke, O. Egeland.— London:Springer Verlag 2nd Ed., 2007 — 579 p.67.
Willems, J.C. Dissipative dynamical systems, part I: General theory; part II:Linear systems with quadratic supply rates / Willems, J.C. // Archive forRationale mechanics Analysis —V.45 — 1972.68. Sun, L. Direct Observation of Whispering Gallery Mode Polaritons and theirDispersion in a ZnO Tapered Microcavity / L.
Sun, Z. Chen, Q. Ren, Ke Yu, L.Bai, W. Zhou, H. Xiong, Z. Q. Zhu, and X. Shen // Phys. Rev. Lett.—2008.—V. 100.– P. 156403.69. Sun, L. Quasi-whispering gallery modes of exciton-polaritons in a ZnOmicrorod / L. Sun, H. Dong, W. Xie, Z. An, X. Shen, and Z. Chen // OpticsExpress— 2010. — V.
18 — №. 15 — P.15371-15376.70. Qingqing, Duan. Polariton lasing of quasi-whispering gallery modes in a ZnOmicrowire / Duan. Qingqing, Dan Xu, Wenhui Liu, Jian Lu, Long Zhang, JianWang, Yinglei Wang, Jie Gu, Tao Hu, Wei Xie, Xuechu Shen and ZhanghaiChen // Appl. Phys. Lett.— 2013.
— V. 103. — P. 022103.71. Le Ru, E. Principles of SERS. / Eric Le Ru, Pablo Etchegoin.— Netherland:Linacre house, 2009. — 663 p.72. Jackson, J. D. Classical Electrodynamics / J. D. Jackson — New York:Wiley,1999—.698 p.11173. Agranovich, M. S. Generalized Method of Eigenoscillation in DiffractionTheory / M.S. Agranovich, Katsenelenbaum.
B. Z., Sivov. A. N. and Voitovich.N. N. — Berlin: Wiley, 1999 — 377 p.74. H, Du. Carrier Density and Plasma Frequency of Aluminum Nanofilms / Du.H, J. Gong, C. Sun, R. Huang, and L. Wen // Journal of Material Science &Technology. — 2003. — V. 19. — P. 365–367.75. Markovic, M. I. and A. D. Rakic. Determination of the reflection coefficients oflaser light of wavelengths λǫ (0.22 μm,200μm) from the surface of aluminumusing the Lorentz-Drude model // Applied Optics. — 1990.
— V. 29. —P.3479–3483.76. Kawabata, A. and R Kubo. Electronic Properties of Fine Metallic Particles. II.Plasma Resonance Absorption // J. Phys. Soc. Jpn. — 1966. — V. 21. — P.1765-1772.77. Genzel, L. Dielectric function and infrared absorption of small metal particles /L. Genzel, U.
Kreibig // Zeitschrift für Physik B Condensed Matter. — 1980.— V. 37. — № 2. — P. 93-101.78. Morse, PM. Methods of Theoretical Physics, Part I. / Feshbach H — New York:McGraw-Hill, 1953. — 665–666 p.79. Moon, PH, Spencer DE, "Bispherical Coordinates (η, θ, ψ). Field TheoryHandbook, Including Coordinate Systems, Differential Equations, and TheirSolutions” 3rd print ed.— New York: Springer Verlag. 1988. — 110–112 p.80. Guzatov, D. V.
and Klimov V. V. Optical properties of a two-nanospheroidcluster: analytical approach — 2010. — arXiv:1010.5760v1.81. Rechberger, W. Optical properties of two interacting gold nanoparticles / W.Rechberger, A. Hohenau, A. Leitner, J.R. Krenn, B. Lamprecht, F.R. Aussenegg// Opt.Comm. — 2003.
— V. 220. — P. 137-141.82. Johnson, P.B. and R. W. Christy. Optical constants of the noble metals. Phys.Rev B — 1972. — V. 6.— P. 4370–4379.83. Landau, L.D. Electrodynamics of Continuous Media, Volume 8 of A Course ofTheoretical Physics. / L.D. Landau, & E.M. Lifshitz — London: Pergamon Pres.1960.— 415 p.84. Garnett, J.C. M. Colours in metal glasses and in metallic films // Philos. Trans.R. Soc. Lond. A.
— 1904. — V. 203. — P. 385–420.85. Buckinghaamnd, j A.D. The dielectric constant of an imperfectnon-polar gas / jA.D. Buckinghaamnd, A. Pople // Trans. Faraday Soc.—1955. — V. 51. — P.1029-1035.86. Kirkwood, John G. / On the Theory of Dielectric Polarization // J. Chem. Phys.— 1936. — V. 4. — P. 592.87. Sihvola, A. Effective Permittivity of Dielectric Mixtures / A.
Sihvola, J.A. Kong// IEEE Trans. Geosciences and Remote Sensing— 1988. —V. 26. — № 4 —P. 420-429.88. Sipe, J.E. Analysis of second harmonic generation at metal surfaces / J.E. Sipe,V. C. Y. So, M. Fukui, and G. I. Stegeman // Phys. Rev. B— 1980. — V. 21.— P.
4389–4402.11289. Blombergen, N. Optical Nonlinearities of a Plasma / N. Blombergen, Y.R. Shen// Phys. Rev. — 1966. — V. 141. — P. 298-305.90. Wang, C.S. Second harmonic generation from alkali metals / C.S. Wang, J.M.Chen And J.R. Bower // Optics communications— 1973.
— V. 8. — № 4. — P275-279.91. Guyot-Sionnest, P. and Y. R. Shen. Bulk contribution in surface secondharmonic generation // Phys. Rev. — 1988. — V.38. — P. 7985.92. Blombergen, N. Optical Nonlinearities of a Plasma / N. Blombergen, Y.R. Shen// Phys.
Rev. B— 1966. — V. 141. — P. 298-305.93. Bloembergen, N. Optical Second-Harmonic Generation in Reflection fromMedia with Inversion Symmetry / N. Bloembergen, R. K. Chang, S. S. Jha, andC. H. Lee // Phys. Rev. — 1968. — V. 174.94. Shen, Y.R. The Principles of Nonlinear Optics / Y.R. Shen — NewYork:Wiley,1984.— 576 p.95. Boyd, R.W. Nonlinear Optics 3rd edition / R.W. Boyd — London: AcademicPress of Elsiever, 2008.— 578 p.96. Ginzburg, P.
Nonlocal ponderomotive nonlinearity in plasmonics / P. Ginzburg,A. Hayat, N. Berkovitch and M. Orenstein // Opt. Lett. —2010—№. 35—V.10—P. 1551–1553.97. Rayleigh, L. Philos. Mag. — 1910. — V.20. — P. 100198. Garrett, C.G.B. Stimulated Emission into Optical Whispering Modes of Spheres/ C.G.B. Garrett, Kaiser W., Bond W.L. // Phys. Rev.
— 1961. — V. 124. — P.1807.99. Grudinin, I.S. Ultrahigh optical Q factors of crystalline resonators in the linearregime / I.S Grudinin, I.S. Ilchenko V.S., Maleki L. // Phys. Rev. A— 2006. —V. 74. — P. 063806.100. Borselli, M. Rayleigh scattering, mode coupling, and optical loss in siliconmicrodisks / M. Borselli, Srinivasan K., Barclay P.E., Painter O. // Appl. Phys.Lett. — 2004. — V. 85.
— P. 3693.101. Borselli, M. Beyond the Rayleigh scattering limit in high-Q siliconmicrodisks: theory and experiment / Borselli, M., Johnson T.J., Painter O. //Opt. Express. — 2005. — V. 13. — P. 1515.102. Bimberg, D. Quantum Dot Heterostructures / D.
Bimberg, M. Grundmann,N.N. Ledentsov — New York: Wiley,1998.— 338 p.103. McCord, M. A. Handbook of Microlithography, Micromachining andMicrofabrication / M. A. McCord — SPIE Press, 2000.104. Principles of Lithography. Electron-beam lithography and mask writers «Fortwo decades, the MEBES systems were the primary beam writers used to makephotomasks», Third Edition — SPIE Press, 2011.105. Puurunen, R.L. Surface chemistry of atomic layer deposition: A case studyfor the trimethylaluminum/water process // J. Appl. Phys. — 2005.