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References
41
[1]
Anderson, M. N. et al. Observation of Bose-Einstein condensation in a dilute atomic vapor. Science 269, 198–201 (1995) 10.1126/science.269.5221.198
[2]
Bose-Einstein Condensation in a Gas of Sodium Atoms

K. B. Davis, M. -O. Mewes, M. R. Andrews et al.

Physical Review Letters 1995 10.1103/physrevlett.75.3969
[3]
Andrews, M. R. et al. Observation of interference between two Bose condensates. Science 275, 637–641 (1997) 10.1126/science.275.5300.637
[4]
Burt, E. A. et al. Coherence, correlations, and collisions: What one learns about Bose-Einstein condensates from their decay. Phys. Rev. Lett. 79, 337–340 (1997) 10.1103/physrevlett.79.337
[5]
Bloch, I. et al. Measurement of the spatial coherence of a trapped Bose gas at the phase transition. Nature 403, 166–170 (2000) 10.1038/35003132
[6]
Moskalenko, S. A. Reversible optico-hydrodynamic phenomena in a non ideal exciton gas. Sov. Phys. Solid State 4, 199–204 (1962)
[7]
Blatt, J. M. Bose-Einstein condensation of excitons. Phys. Rev. 126, 1691–1692 (1962) 10.1103/physrev.126.1691
[8]
Keldysh, L. V. & Kozlov, A. N. Collective properties of excitons in semiconductors. Sov. Phys. JETP 27, 521–525 (1968)
[9]
Spontaneous Bose Coherence of Excitons and Polaritons

David Snoke

Science 2002 10.1126/science.1078082
[10]
Snoke, D. W. When should we say we have observed Bose condensation of excitons? Phys. Status Solidi B 238, 389–396 (2003) 10.1002/pssb.200303151
[11]
Rüegg, Ch. et al. Bose-Einstein condensation of the triplet states in the magnetic insulator TlCuCl3 . Nature 423, 62–65 (2003) 10.1038/nature01617
[12]
Eisenstein, J. P. & MacDonald, A. H. Bose-Einstein condensation of excitons in bilayer electron systems. Nature 432, 691–694 (2004) 10.1038/nature03081
[13]
Butov, L. V. et al. Towards Bose-Einstein condensation of excitons in potential traps. Nature 417, 47–52 (2002) 10.1038/417047a
[14]
Snoke, D. W. et al. Long-range transport in excitonic dark states in coupled quantum wells. Nature 418, 754–757 (2002) 10.1038/nature00940
[15]
Weisbuch, C. et al. Observation of the coupled exciton-photon mode splitting in a semiconductor quantum microcavity. Phys. Rev. Lett. 69, 3314–3317 (1992) 10.1103/physrevlett.69.3314
[16]
Kavokin, A. & Malpuech, G. Cavity Polaritons (Elsevier, Amsterdam, 2003)
[17]
Savona, V. et al. Theory of polariton photoluminescence in arbitrary semiconductor microcavity structures. Phys. Rev. B 53, 13051–13062 (1996) 10.1103/physrevb.53.13051
[18]
Le Si, D. et al. Stimulation of polariton photoluminescence in semiconductor microcavity. Phys. Rev. Lett. 81, 3920–3923 (1998) 10.1103/physrevlett.81.3920
[19]
Deng, H. et al. Condensation of semiconductor microcavity exciton polaritons. Science 298, 199–202 (2002) 10.1126/science.1074464
[20]
Bose-Einstein condensation in the alkali gases: Some fundamental concepts

Anthony J. Leggett

Reviews of Modern Physics 2001 10.1103/revmodphys.73.307
[21]
Pitaevskii, L. & Stringari, S. Bose-Einstein Condensation Ch. 1, 6, 15 (Oxford Science Publication, Oxford Univ. Press, Oxford, 2003)
[22]
Absence of Ferromagnetism or Antiferromagnetism in One- or Two-Dimensional Isotropic Heisenberg Models

N. D. Mermin, H. Wagner

Physical Review Letters 1966 10.1103/physrevlett.17.1133
[23]
Keeling, J. et al. Polariton condensation with localized excitons and propagating photons. Phys. Rev. Lett. 93, 226403 (2004) 10.1103/physrevlett.93.226403
[24]
Marchetti, F. M. et al. Thermodynamics and excitations of condensed polaritons in disordered microcavities. Phys. Rev. Lett. 96, 066405 (2006) 10.1103/physrevlett.96.066405
[25]
Szymańska, M. H. et al. Non-equilibrium quantum condensation in an incoherently pumped dissipative system. Phys. Rev. Lett. 96, 230602 (2006) 10.1103/physrevlett.96.230602
[26]
André, R. et al. Spectroscopy of polaritons in CdTe-based microcavities. J. Cryst. Growth 184/185, 758–762 (1998) 10.1016/s0022-0248(98)80158-9
[27]
Bœuf, F. et al. Evidence of polariton stimulation in semiconductor microcavities. Phys. Rev. B 62, R2279–R2282 (2000) 10.1103/physrevb.62.r2279
[28]
Richard, M. et al. Spontaneous coherent phase transition of polaritons in CdTe microcavities. Phys. Rev. Lett. 94, 187401 (2005) 10.1103/physrevlett.94.187401
[29]
Richard, M. et al. Experimental evidence for nonequilibrium Bose condensation of exciton polaritons. Phys. Rev. B 72, 201301(R) (2005) 10.1103/physrevb.72.201301
[30]
Bloch, J. et al. Monitoring the dynamics of a coherent cavity polariton population. Phys. Rev. B 71, 155311 (2005) 10.1103/physrevb.71.155311
[31]
Porras, D. & Tejedor, C. Linewidth of a polariton laser: Theoretical analysis of self-interaction effects. Phys. Rev. B 67, 161310(R) (2003) 10.1103/physrevb.67.161310
[32]
Tassone, F. et al. Bottleneck effects in the relaxation and photoluminescence of microcavity polaritons. Phys. Rev. B 56, 7554–7563 (1997) 10.1103/physrevb.56.7554
[33]
Müller, M. et al. Dynamics of the cavity polariton in CdTe-based semiconductor microcavities: Evidence for a relaxation edge. Phys. Rev. B 62, 16886–16892 (2000) 10.1103/physrevb.62.16886
[34]
Ensher, J. R. et al. Bose-Einstein condensation in a dilute gas: Measurement of energy and ground state occupation. Phys. Rev. Lett. 77, 4984–4987 (1996) 10.1103/physrevlett.77.4984
[35]
Sokol, P. in Bose-Einstein Condensation (eds Griffin, A., Snoke, D. W. & Stringari, S.) 51 (Cambridge Univ. Press, Cambridge, 1995)
[36]
Porras, D. et al. Polariton dynamics and Bose-Einstein condensation in semiconductor microcavities. Phys. Rev. B 66, 85304 (2002) 10.1103/physrevb.66.085304
[37]
Martin, M. D. et al. Striking dynamics of II-VI microcavity polaritons after linearly polarized excitation. Phys. Status Solidi C 2, 3880–3883 (2005) 10.1002/pssc.200562036
[38]
Angle-Resonant Stimulated Polariton Amplifier

P. G. Savvidis, J. J. Baumberg, R. M. Stevenson et al.

Physical Review Letters 2000 10.1103/physrevlett.84.1547
[39]
Ciuti, C. et al. Parametric luminescence of microcavity polaritons. Phys. Rev. B 63, 041303(R) (2001) 10.1103/physrevb.63.041303
[40]
Laussy, F. P. et al. Effects of Bose-Einstein condensation of exciton polaritons in microcavities on the polarization of emitted light. Phys. Rev. B 73, 035315 (2006) 10.1103/physrevb.73.035315
[41]
Imamoglu, A. & Ram, R. J. Quantum dynamics of exciton lasers. Phys. Lett. A 214, 193–198 (1996) 10.1016/0375-9601(96)00175-2
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Published
Sep 01, 2006
Vol/Issue
443(7110)
Pages
409-414
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Cite This Article
J. Kasprzak, M. Richard, S. Kundermann, et al. (2006). Bose–Einstein condensation of exciton polaritons. Nature, 443(7110), 409-414. https://doi.org/10.1038/nature05131
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