J. J. Hopfield, Theory of the contribution of excitons to the complex dielectric constant of crystals, Phys. Rev, vol.112, pp.1555-1567, 1958.

V. M. Agranovi?, Dispersion of electromagnetic waves in crystals, ?. Èksper Teor. Fiz, vol.37, pp.307-441, 1960.

C. Weisbuch, M. Nishioka, A. Ishikawa, and Y. Arakawa, Observation of the coupled exciton-photon mode splitting in a semiconductor quantum microcavity, Phys. Rev. Lett, vol.69, pp.3314-3317, 1992.

I. A. Shelykh, A. V. Kavokin, Y. G. Rubo, T. C. Liew, and G. Malpuech, Polariton polarization-sensitive phenomena in planar semiconductor microcavities, Semicond. Sci. Technol, vol.25, p.13001, 2010.

I. Carusotto and C. Ciuti, Quantum fluids of light, Rev. Mod. Phys, vol.85, pp.299-366, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00913374

J. Kasprzak, Bose-einstein condensation of exciton polaritons, Nature, vol.443, pp.409-414, 2006.

J. Kasprzak, D. D. Solnyshkov, R. André, L. S. Dang, and G. Malpuech, Formation of an exciton polariton condensate: thermodynamic versus kinetic regimes, Phys. Rev. Lett, vol.101, p.146404, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00999296

Y. B. Sun, Bose-Einstein condensation of long-lifetime polaritons in thermal equilibrium, Phys. Rev. Lett, vol.118, p.16602, 2017.

A. Amo, Superfluidity of polaritons in semiconductor microcavities, Nat. Phys, vol.5, pp.805-810, 2009.

D. Sanvitto and S. Kéna-cohen, The road towards polaritonic devices, Nat. Mater, vol.15, pp.1061-1073, 2016.

K. G. Lagoudakis, Quantized vortices in an exciton-polariton condensate, Nat. Phys, vol.4, pp.706-710, 2008.

R. Hivet, Half-solitons in a polariton quantum fluid behave like magnetic monopoles, Nat. Phys, vol.8, pp.724-728, 2012.

V. G. Sala, Spin-orbit coupling for photons and polaritons in microstructures, Phys. Rev. X, vol.5, p.11034, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01275245

C. W. Lai, Coherent zero-state and ?-state in an exciton-polariton condensate array, Nature, vol.450, pp.529-532, 2007.

T. Jacqmin, Direct observation of Dirac cones and a flatband in a honeycomb lattice for polaritons, Phys. Rev. Lett, vol.112, p.116402, 2014.

N. Y. Kim, f-band condensates in exciton-polariton lattice systems, Phys. Rev. B, vol.89, p.85306, 2014.

C. E. Whittaker, Exciton polaritons in a two-dimensional lieb lattice with spin-orbit coupling, Phys. Rev. Lett, vol.120, p.97401, 2018.

A. V. Nalitov, D. D. Solnyshkov, and G. Malpuech, Polariton Z topological insulator, Phys. Rev. Lett, vol.114, p.116401, 2015.

D. D. Solnyshkov, A. V. Nalitov, and G. Malpuech, Kibble-zurek mechanism in topologically nontrivial zigzag chains of polariton micropillars, Phys. Rev. Lett, vol.116, p.46402, 2016.

P. St-jean, Lasing in topological edge states of a one-dimensional lattice, Nat. Photonics, vol.11, pp.651-656, 2017.

N. G. Berloff, Realizing the classical XY Hamiltonian in polariton simulators, Nat. Mater, vol.16, pp.1120-1126, 2017.

A. Imamo?lu, R. J. Ram, S. Pau, and Y. Yamamoto, Nonequilibrium condensates and lasers without inversion: exciton-polariton lasers, Phys. Rev. A, vol.53, pp.4250-4253, 1996.

S. Christopoulos, Room-temperature polariton lasing in semiconductor microcavities, Phys. Rev. Lett, vol.98, p.126405, 2007.

G. Christmann, R. Butté, E. Feltin, J. F. Carlin, and N. Grandjean, Room temperature polariton lasing in a GaN-AlGaN multiple quantum well microcavity, Appl. Phys. Lett, vol.93, p.51102, 2008.

P. Bhattacharya, Room temperature electrically injected polariton laser, Phys. Rev. Lett, vol.112, p.236802, 2014.

F. Li, From excitonic to photonic polariton condensate in a ZnO-based microcavity, Phys. Rev. Lett, vol.110, p.196406, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00824238

S. Kéna-cohen and S. R. Forrest, Room-temperature polariton lasing in an organic single-crystal microcavity, Nat. Photonics, vol.4, pp.371-375, 2010.

C. P. Dietrich, An exciton-polariton laser based on biologically produced fluorescent protein, Sci. Adv, vol.2, p.1600666, 2016.

M. Liscidini, D. Gerace, D. Sanvitto, and D. Bajoni, Guided Bloch surface wave polaritons, Appl. Phys. Lett, vol.98, p.121118, 2011.

S. Pirotta, Strong coupling between excitons in organic semiconductors and Bloch surface waves, Appl. Phys. Lett, vol.104, p.51111, 2014.

G. Lerario, High-speed flow of interacting organic polaritons, Light Sci. Appl, vol.6, p.16212, 2017.

D. D. Solnyshkov, H. Terças, and G. Malpuech, Optical amplifier based on guided polaritons in GaN and ZnO, Appl. Phys. Lett, vol.105, p.231102, 2014.

P. M. Walker, Exciton polaritons in semiconductor waveguides, Appl. Phys. Lett, vol.102, p.12109, 2013.

I. Rosenberg, Y. Mazuz-harpaz, R. Rapaport, K. West, and L. Pfeiffer, Electrically controlled mutual interactions of flying waveguide dipolaritons, Phys. Rev. B, vol.93, p.195151, 2016.

T. Ellenbogen and K. B. Crozier, Exciton-polariton emission from organic semiconductor optical waveguides, Phys. Rev. B, vol.84, p.161304, 2011.

J. Ciers, Propagating polaritons in III-nitride slab waveguides, Phys. Rev. Appl, vol.7, p.34019, 2017.

F. Hu, Imaging exciton-polariton transport in MoSe 2 waveguides, Nat. Photonics, vol.11, pp.356-360, 2017.

P. M. Walker, Ultra-low-power hybrid lightmatter solitons, Nat. Commun, vol.6, p.8317, 2015.

B. Bahari, Nonreciprocal lasing in topological cavities of arbitrary geometries, Science, vol.358, pp.636-640, 2017.

M. A. Bandres, Topological insulator laser: experiments, Science, vol.359, p.4005, 2018.

J. Zuniga-perez, Homoepitaxial nonpolar (10-10) ZnO/ZnMgO monolithic microcavities: towards reduced photonic disorder, Appl. Phys. Lett, vol.108, p.251904, 2016.

M. H. Huang, Room-temperature ultraviolet nanowire nanolasers, Science, vol.292, pp.1897-1899, 2001.

M. Zamfirescu, A. Kavokin, B. Gil, G. Malpuech, and M. Kaliteevski, ZnO as a material mostly adapted for the realization of room-temperature polariton lasers, Phys. Rev. B, vol.65, p.161205, 2002.

S. Chu, M. Olmedo, Z. Yang, J. Y. Kong, and J. L. Liu, Electrically pumped ultraviolet ZnO diode lasers on Si, Appl. Phys. Lett, vol.93, p.181106, 2008.

D. Vanmaekelbergh and L. K. Van-vugt, ZnO nanowire lasers. Nanoscale, vol.3, pp.2783-2800, 2011.

M. A. Versteegh, D. Vanmaekelbergh, and J. I. Dijkhuis, Room-temperature laser emission of ZnO nanowires explained by many-body theory, Phys. Rev. Lett, vol.108, p.157402, 2012.

J. Levrat, Condensation phase diagram of cavity polaritons in GaNbased microcavities: experiment and theory, Phys. Rev. B, vol.81, p.125305, 2010.

O. Jamadi, Polariton condensation phase diagram in wide-bandgap planar microcavities: GaN versus ZnO, Phys. Rev. B, vol.93, p.115205, 2016.

H. Haug and K. Grob, Exciton laser theory, Phys. Lett. A, vol.26, pp.41-42, 1967.
DOI : 10.1016/0375-9601(67)90548-8

C. Schneider, An electrically pumped polariton laser, Nature, vol.497, pp.348-352, 2013.
DOI : 10.1364/cleo_si.2013.cth5c.1