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46. A. Rahimi-Iman, Optically-Excited Polariton Condensates. Springer Series in Optical Sciences, vol. 229 (Springer International Publishing, Cham, 2020), pp. 195–240
47. D. Sanvitto, S. Kéna-Cohen, The road towards polaritonic device. Nat. Mater. 15(10), 1061–
1073 (2016)
48. M.D. Fraser, S. Höfling, Y. Yamamoto, Physics and applications of exciton-polariton lasers.
Nat. Mater. 15, 1049 (2016)
49. M.D. Fraser, Coherent exciton-polariton devices. Semicond. Sci. Technol. 32, 093003 (2017)
50. S. Kim, B. Zhang, Z. Wang, J. Fischer, S. Brodbeck, M. Kamp, C. Schneider, S. Höfling, H.
Deng, Coherent polariton laser. Phys. Rev. X 6, 011026 (2016)
51. C. Schneider, M.M. Glazov, T. Korn, S. Höfling, B. Urbaszek, Two-dimensional semiconductors in the regime of strong light-matter coupling. Nat. Commun. 9, 2695 (2018)
52. G.H. Wannier, The structure of electronic excitation levels in insulating crystals. Phys. Rev.
52, 191 (1937)
53. N.F. Mott, Conduction in polar crystals. II. The conduction band and ultra-violet absorption
of alkali-halide crystals. Trans. Faraday Soc. 34, 500 (1938)
54. J. Frenkel, Wave Mechanics. Elementary Theory (Clarendon Press, Oxford, 1932)
55. K.F. Mak, J. Shan, Photonics and optoelectronics of 2D semiconductor transition metal
dichalcogenides. Nat. Photonics 10, 216–226 (2016)
56. N. Peyghambarian, S.W. Koch, A. Mysyrowicz, Introduction to Semiconductor Optics (Prentice Hall, Upper Saddle River, 1993)
57. H. Haug, S.W. Koch, Quantum Theory of the Optical and Electronic Properties of Semiconductors (World Scientific, Singapore, 1994)
58. A. Griffin, D.W. Snoke, S. Stringari, Bose-Einstein Condensation (Cambridge University
Press, Cambridge, 1995)
59. S.A. Moskalenko, D.W. Snoke, Bose-Einstein Condensation of Excitons and Biexcitons: And
Coherent Nonlinear Optics with Excitons (Cambridge University Press, Cambridge, 2000)
60. A.J. Leggett, Bose-Einstein condensation in the alkali gases: some fundamental concepts.
Rev. Mod. Phys. 73, 307–356 (2001)
61. L.P. Pitaevskii, S. Stringari, Bose-Einstein Condensation (Oxford University Press, Oxford,
2003)
62. A. Posazhennikova, Colloquium: weakly interacting, dilute Bose gases in 2D. Rev. Mod.
Phys. 78(4), 1111–1134 (2006)
63. Z. Wang, D.A. Rhodes, K. Watanabe, T. Taniguchi, J.C. Hone, J. Shan, K.F. Mak, Evidence
of high-temperature exciton condensation in two-dimensional atomic double layers. Nature
574, 76–80 (2019)
64. H. Kroemer, Nobel lecture: quasielectric fields and band offsets: teaching electrons new tricks.
Rev. Mod. Phys. 73, 783–793 (2001)
65. Z.I. Alferov, Nobel lecture: the double heterostructure concept and its applications in physics,
electronics, and technology. Rev. Mod. Phys. 73, 767–782 (2001)
66. S. Noda, Seeking the ultimate nanolaser. Science 314, 260 (2006)
67. S. Strauf, F. Jahnke, Single quantum dot nanolaser. Laser Photonics Rev. 5, 607–633 (2011)
68. G. Eisenstein, D. Bimberg, Green Photonics and Electronics (Springer, Cham, 2017)
69. Y. Yamamoto, F. Tassone, H. Cao, Semiconductor Cavity Quantum Electrodynamics
(Springer, Berlin, 2000)
70. J.-M. Gérard, Solid-state cavity-quantum electrodynamics with self-assembled quantum dots,
in Single Quantum Dots: Fundamentals, Applications, and New Concepts (Springer, Berlin,
2003), pp. 269–314
71. P. Michler (ed.), Single Quantum Dots: Fundamentals, Applications and New Concepts
(Springer, Berlin, 2003)
72. P. Michler (ed.), Single Semiconductor Quantum Dots (Springer, Berlin, 2009)
73. S. Rodt, S. Reitzenstein, T. Heindel, Deterministically fabricated solid-state quantum-light
sources. J. Phys. Condens. Matter 32, 153003 (2020)