90
3 Light–Matter Interactions for Photonic Applications
91. J.D. Caldwell, L. Lucas, G. Vincenzo, V. Igor, L. Reinecke Thomas, A. Maier Stefan, J. Glembocki Orest, Low-loss, infrared and terahertz nanophotonics using surface phonon polaritons.
Nanophotonics 4(1), 44 (2015)
92. J.-S. Wu, D.N. Basov, M.M. Fogler, Topological insulators are tunable waveguides for hyperbolic polaritons. Phys. Rev. B 92, 205430 (2015)
93. M. Sidler, P. Back, O. Cotlet, A. Srivastava, T. Fink, M. Kroner, E. Demler, A. Imamoglu,
Fermi polaron-polaritons in charge-tunable atomically thin semiconductors. Nat. Phys. 13,
255 (2016)
94. N. Wu, J. Feist, F.J. Garcia-Vidal, When polarons meet polaritons: exciton-vibration interactions in organic molecules strongly coupled to confined light fields. Phys. Rev. B 94, 195409
(2016)
95. M. Irie, S. Kawata, M. Ohtsu (eds.), Near-Field Optics and Surface Plasmon Polaritons
(Springer, Berlin, 2001)
96. V.W. Brar, M.S. Jang, M. Sherrott, S. Kim, J.J. Lopez, L.B. Kim, M. Choi, H. Atwater, Hybrid
surface-phonon-plasmon polariton modes in graphene/monolayer h-bn heterostructures. Nano
Lett. 14, 3876–3880 (2014)
97. V.A. Kosobukin, Plasmon-excitonic polaritons in superlattices. Phys. Solid State 59, 999–
1007 (2017)
98. D.N. Basov, M.M. Fogler, F.J. García De Abajo, Polaritons in van der Waals materials. Science
354, aag1992 (2016)
99. A. Frisk Kockum, A. Miranowicz, S. De Liberato, S. Savasta, F. Nori, Ultrastrong coupling
between light and matter. Nat. Rev. Phys. 1, 19–40 (2019)
100. P. Forn-D, L. Lamata, E. Rico, J. Kono, E. Solano, Ultrastrong coupling regimes of light-matter
interaction. Rev. Mod. Phys. 91, 025005 (2019)
101. F. Wall, O. Mey, L.M. Schneider, A. Rahimi-Iman, Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors. Sci. Rep. 10, 8303 (2020). https://doi.
org/10.1038/s41598-020-64909-1
102. M. Hertzog, M. Wang, J. Mony, K. Börjesson, Strong light-matter interactions: a new direction
within chemistry. Chem. Soc. Rev. 48, 937–961 (2019)
103. P. Qing, J. Gong, X. Lin, N. Yao, W. Shen, A. Rahimi-Iman, W. Fang, L. Tong, A simple
approach to fiber-based tunable microcavity with high coupling efficiency. Appl. Phys. Lett.
114, 021106 (2019). https://doi.org/10.1063/1.5083011
104. S.R.K. Rodriguez, Classical and quantum distinctions between weak and strong coupling.
Eur. J. Phys. 37, 25802 (2016)
105. R. El-Ganainy, K.G. Makris, M. Khajavikhan, Z.H. Musslimani, S. Rotter, D.N.
Christodoulides, Non-Hermitian physics and PT symmetry. Nat. Phys. 14(1), 11–19 (2018)
106. W.D. Heiss, The physics of exceptional points. J. Phys. A: Math. Theor. 45, 444016 (2012)
107. M. Orszag, Quantum Optics: Including Noise Reduction, Trapped Ions, Quantum Trajectories,
and Decoherence, 3rd edn. (Springer International Publishing, Berlin, 2016)
108. G.H. Wannier, The structure of electronic excitation levels in insulating crystals. Phys. Rev.
52, 191 (1937)
109. G. Wang, A. Chernikov, M.M. Glazov, T.F. Heinz, X. Marie, T. Amand, B. Urbaszek, Colloquium: excitons in atomically thin transition metal dichalcogenides. Rev. Mod. Phys. 90,
21001 (2018)
110. N.S. Rytova, Screened potential of a point charge in a thin film. MSU Phys. Astron. 3(30)
(1967). arXiv:1806.00976
111. L.V. Keldysh, Coulomb interaction in thin semiconductor and semimetal films. Sov. JETP
Lett. 29, 658 (1979)
112. P. Cudazzo, I.V. Tokatly, A. Rubio, Dielectric screening in two-dimensional insulators: implications for excitonic and impurity states in graphane. Phys. Rev. B 84, 085406 (2011)
113. H. Haug, S.W. Koch, Quantum Theory of the Optical and Electronic Properties of Semiconductors, 5th edn. (World Scientific Publishing Co., Singapore, 2009)
114. S. Brem, A. Ekman, D. Christiansen, F. Katsch, M. Selig, C. Robert, X. Marie, B. Urbaszek,
A. Knorr, E. Malic, Phonon-assisted photoluminescence from indirect excitons in monolayers
of transition-metal dichalcogenides. Nano Lett. 20(4), 2849–2856 (2020)
3 Light–Matter Interactions for Photonic Applications
91. J.D. Caldwell, L. Lucas, G. Vincenzo, V. Igor, L. Reinecke Thomas, A. Maier Stefan, J. Glembocki Orest, Low-loss, infrared and terahertz nanophotonics using surface phonon polaritons.
Nanophotonics 4(1), 44 (2015)
92. J.-S. Wu, D.N. Basov, M.M. Fogler, Topological insulators are tunable waveguides for hyperbolic polaritons. Phys. Rev. B 92, 205430 (2015)
93. M. Sidler, P. Back, O. Cotlet, A. Srivastava, T. Fink, M. Kroner, E. Demler, A. Imamoglu,
Fermi polaron-polaritons in charge-tunable atomically thin semiconductors. Nat. Phys. 13,
255 (2016)
94. N. Wu, J. Feist, F.J. Garcia-Vidal, When polarons meet polaritons: exciton-vibration interactions in organic molecules strongly coupled to confined light fields. Phys. Rev. B 94, 195409
(2016)
95. M. Irie, S. Kawata, M. Ohtsu (eds.), Near-Field Optics and Surface Plasmon Polaritons
(Springer, Berlin, 2001)
96. V.W. Brar, M.S. Jang, M. Sherrott, S. Kim, J.J. Lopez, L.B. Kim, M. Choi, H. Atwater, Hybrid
surface-phonon-plasmon polariton modes in graphene/monolayer h-bn heterostructures. Nano
Lett. 14, 3876–3880 (2014)
97. V.A. Kosobukin, Plasmon-excitonic polaritons in superlattices. Phys. Solid State 59, 999–
1007 (2017)
98. D.N. Basov, M.M. Fogler, F.J. García De Abajo, Polaritons in van der Waals materials. Science
354, aag1992 (2016)
99. A. Frisk Kockum, A. Miranowicz, S. De Liberato, S. Savasta, F. Nori, Ultrastrong coupling
between light and matter. Nat. Rev. Phys. 1, 19–40 (2019)
100. P. Forn-D, L. Lamata, E. Rico, J. Kono, E. Solano, Ultrastrong coupling regimes of light-matter
interaction. Rev. Mod. Phys. 91, 025005 (2019)
101. F. Wall, O. Mey, L.M. Schneider, A. Rahimi-Iman, Continuously-tunable light-matter coupling in optical microcavities with 2D semiconductors. Sci. Rep. 10, 8303 (2020). https://doi.
org/10.1038/s41598-020-64909-1
102. M. Hertzog, M. Wang, J. Mony, K. Börjesson, Strong light-matter interactions: a new direction
within chemistry. Chem. Soc. Rev. 48, 937–961 (2019)
103. P. Qing, J. Gong, X. Lin, N. Yao, W. Shen, A. Rahimi-Iman, W. Fang, L. Tong, A simple
approach to fiber-based tunable microcavity with high coupling efficiency. Appl. Phys. Lett.
114, 021106 (2019). https://doi.org/10.1063/1.5083011
104. S.R.K. Rodriguez, Classical and quantum distinctions between weak and strong coupling.
Eur. J. Phys. 37, 25802 (2016)
105. R. El-Ganainy, K.G. Makris, M. Khajavikhan, Z.H. Musslimani, S. Rotter, D.N.
Christodoulides, Non-Hermitian physics and PT symmetry. Nat. Phys. 14(1), 11–19 (2018)
106. W.D. Heiss, The physics of exceptional points. J. Phys. A: Math. Theor. 45, 444016 (2012)
107. M. Orszag, Quantum Optics: Including Noise Reduction, Trapped Ions, Quantum Trajectories,
and Decoherence, 3rd edn. (Springer International Publishing, Berlin, 2016)
108. G.H. Wannier, The structure of electronic excitation levels in insulating crystals. Phys. Rev.
52, 191 (1937)
109. G. Wang, A. Chernikov, M.M. Glazov, T.F. Heinz, X. Marie, T. Amand, B. Urbaszek, Colloquium: excitons in atomically thin transition metal dichalcogenides. Rev. Mod. Phys. 90,
21001 (2018)
110. N.S. Rytova, Screened potential of a point charge in a thin film. MSU Phys. Astron. 3(30)
(1967). arXiv:1806.00976
111. L.V. Keldysh, Coulomb interaction in thin semiconductor and semimetal films. Sov. JETP
Lett. 29, 658 (1979)
112. P. Cudazzo, I.V. Tokatly, A. Rubio, Dielectric screening in two-dimensional insulators: implications for excitonic and impurity states in graphane. Phys. Rev. B 84, 085406 (2011)
113. H. Haug, S.W. Koch, Quantum Theory of the Optical and Electronic Properties of Semiconductors, 5th edn. (World Scientific Publishing Co., Singapore, 2009)
114. S. Brem, A. Ekman, D. Christiansen, F. Katsch, M. Selig, C. Robert, X. Marie, B. Urbaszek,
A. Knorr, E. Malic, Phonon-assisted photoluminescence from indirect excitons in monolayers
of transition-metal dichalcogenides. Nano Lett. 20(4), 2849–2856 (2020)