<span class="mw-page-title-main">Glosses</span>
Fabrice P. Lauss𝕪's Web

Glosses

My annotations follow the scholarly lineage. Marginalia (notes in the margin) and Glosses (explanatory notes on a text) are the two great medieval annotation traditions.

All Glosses (213 of them so far):

  1. Macroscopic quantum self-trapping and Josephson oscillations of exciton polaritons. M. Abbarchi, A. Amo, V. G. Sala, D. D. Solnyshkov, H. Flayac, L. Ferrier, I. Sagnes, E. Galopin, A. Lemaître, G. Malpuech and J. Bloch in Nature Phys. 9:275 (2013).
  2. Stabilizing Open Photon Condensates by Ghost-Attractor Dynamics. A. Abouelela, M. Turaev, R. Kramer, M. Janning, M. Kajan, S. Ray and J. Kroha in Phys. Rev. Lett. 135:053402 (2025).
  3. Absorptive and dispersive optical responses of excitons in a single quantum dot. B. Alén, A. Högele, M. Kroner, S. Seidl, K. Karrai, R. J. Warburton, A. Badolato, G. Medeiros-Ribeiro and P. M. Petroff in Appl. Phys. Lett. 89:123124 (2006).
  4. Theory of photon correlations in two-photon cascade emission. A Al-Hilfy and R Loudon in J. Phys. B.: At. Mol. Phys. 18:3697 (1985).
  5. Shape of the two-photon-continuum emission from the 1s2s$^1$S$_0$ state in He-like krypton. R. Ali, I. Ahmad, R. W. Dunford, D. S. Gemmell, M. Jung, E. P. Kanter, P. H. Mokler, H. G. Berry, A. E. Livingston, S. Cheng and L. J. Curtis in Phys. Rev. A 55:994 (1997).
  6. Perspectives in superfluidity in resonantly driven polariton fluids. I. Amelio and I. Carusotto in Phys. Rev. B 101:064505 (2020).
  7. Exciton-polaritons in lattices: A non-linear photonic simulator. A. Amo and J. Bloch in C. R. Phys. 17:934 (2016).
  8. Surprises from Bose-Einstein correlations. I. V. Andreev, M. Plümer and R. M. Weiner in Phys. Rev. Lett. 67:3475 (1991).
  9. Four-photon cascade from quadexcitons in a single GaAs quantum dot. Y. Arashida, Y. Ogawa and F. Minami in Phys. Rev. B 84:125309 (2011).
  10. Resonance Fluorescence of a Single Artificial Atom. O. Astafiev, A. M. Zagoskin, A. A. Abdumalikov Jr., Yu. A. Pashkin, T. Yamamoto, K. Inomata, Y. Nakamura and J. S. Tsai in Science 327:840 (2010).
  11. Fiber-assisted single-photon spectrograph. M. Avenhaus, A. Eckstein, P. Mosley and C. Silberhorn in Opt. Lett. 34:2873 (2009).
  12. Qubit analog with polariton superfluid in an annular trap. J. Barrat, A. F. Tzortzakakis, M. Niu, X. Zhou, G. G. Paschos, D. Petrosyan and P. G. Savvidis in Science Advances 10:eado4042 (2024).
  13. Dialogue concerning two views on quantum coherence: factist and fictionist. S. D. Bartlett, T. Rudolph and R. W. Spekkens in Int. J. Quantum Inform. 04:17 (2006).
  14. Photon antibunching in the fluorescence of a single dye molecule trapped in a solid. T. Basché, W. E. Moerner, M. Orrit and H. Talon in Phys. Rev. Lett. 69:1516 (1992).
  15. Parametric amplification and polariton liquids in semiconductor microcavities. J. J. Baumberg and P. G. Lagoudakis in Phys. Stat. Sol. B 242:2210 (2005).
  16. Observation of Quantum Jumps in a Single Atom. J. C. Bergquist, R. G. Hulet, W. M. Itano and D. J. Wineland in Phys. Rev. Lett. 57:1699 (1986).
  17. Photophysics of single nitrogen-vacancy centers in diamond nanocrystals. M. Berthel, O. Mollet, G. Dantelle, T. Gacoin, S. Huant and A. Drezet in Phys. Rev. B 91:035308 (2015).
  18. Photon propagation through dissipative Rydberg media at large input rates. P. Bienias, J. Douglas, A. Paris-Mandoki, P. Titum, I. Mirgorodskiy, C. Tresp, E. Zeuthen, M. J. Gullans, M. Manzoni, S. Hofferberth, D. Chang and A. V. Gorshkov in Phys. Rev. Res. 2:033049 (2020).
  19. Photoluminescence dynamics of cavity polaritons under resonant excitation in the picosecond range. J. Bloch and J. Y. Marzin in Phys. Rev. B 56:2103 (1997).
  20. A strong no-go theorem on the Wigner's friend paradox. K.-W. Bong, A. Utreras-Alarcón, F. Ghafari, Y. Liang, N. Tischler, E. G. Cavalcanti, G. J. Pryde and H. M. Wiseman in Nature Phys. 16:1199 (2020).
  21. Polariton-generated intensity squeezing in semiconductor micropillars. T. Boulier, M. Bamba, A. Amo, C. Adrados, A. Lemaître, E. Galopin, I. Sagnes, J. Bloch, C. Ciuti, E. Giacobino and A. Bramati in Nature Comm. 5:3260 (2014).
  22. Two-photon emission from a superlattice-based superconducting light-emitting structure. S. Bouscher, D. Panna, R. Jacovi, F. Jabeen, C. Schneider, S. Höfling and A. Hayat in Light: Sci. & App. 13:135 (2024).
  23. Quantum coherence of a long-lifetime exciton-polariton condensate. Y. Brune, E. Rozas, K. West, K. Baldwin, L. Pfeiffer, J. Beaumariage, H. Alnatah, D. Snoke and M. Aßmann in Commun. Mater. 6:123 (2025).
  24. A polariton laser. L. V. Butov in Nature 447:540 (2007).
  25. The behaviour of exciton-polaritons. L.V. Butov and A.V. Kavokin in Nature Photon. 6:2 (2012).
  26. Macroscopic quantum computation using Bose-Einstein condensates. T. Byrnes, K. Wen and Y. Yamamoto in Phys. Rev. A 85:040306 (2012).
  27. A quantum-mechanical master equation treatment of the dynamical Stark effect. H. J. Carmichael and D. F. Walls in J. Phys. B.: At. Mol. Phys. 9:1199 (1976).
  28. Probing Microcavity Polariton Superfluidity through Resonant Rayleigh Scattering. I. Carusotto and C. Ciuti in Phys. Rev. Lett. 93:166401 (2004).
  29. Quantum Subversives. E. Cavalcanti in American Scientist 99:500 (2011).
  30. Unknown quantum states: The quantum de Finetti representation. C. Caves, C. Fuchs and R. Schack in J. Math. Phys. 43:4537 (2002).
  31. Crystallization of strongly interacting photons in a nonlinear optical fibre. D. E. Chang, V. Gritsev, G. Morigi, V. Vuletić, M. D. Lukin and E. A. Demler in Nature Phys. 4:884 (2008).
  32. Hologram of a single photon. R. Chrapkiewicz, M. Jachura, K. Banaszek and W. Wasilewski in Nature Photon. 10:576 (2016).
  33. Experimental distinction between the quantum and classical field-theoretic predictions for the photoelectric effect. J. F. Clauser in Phys. Rev. D 9:853 (1974).
  34. Possibility of Direct Observation of Quantum Jumps. R. Cook and H. Kimble in Phys. Rev. Lett. 54:1023 (1985).
  35. Multiple time scale blinking in InAs quantum dot single-photon sources. M. Davanço, C. S. Hellberg, S. Ateş, A. Badolato and K. Srinivasan in Phys. Rev. B 89:161303 (2014).
  36. Advances in quantum imaging. H. Defienne, W. P. Bowen, M. Chekhova, G. B. Lemos, D. Oron, S. Ramelow, N. Treps and D. Faccio in Nature Photon. 18:1024 (2024).
  37. Cascade evolution and radiative recombination of quantum dot multiexcitons studied by time-resolved spectroscopy. E. Dekel, D. V. Regelman, D. Gershoni, E. Ehrenfreund, W. V. Schoenfeld and P. M. Petroff in Phys. Rev. B 62:11038 (2000).
  38. Theory of Frequency-Filtered and Time-Resolved $N$-Photon Correlations. E. del Valle, A. González-Tudela, F. P. Laussy, C. Tejedor and M. J. Hartmann in Phys. Rev. Lett. 109:183601 (2012). 
  39. Erratum: Theory of Frequency-Filtered and Time-Resolved~$N$-Photon Correlations [Phys. Rev. Lett.109, 183601 (2012)]. E. del Valle, A. González-Tudela, F. Laussy, C. Tejedor and M. Hartmann in Phys. Rev. Lett. 116:249902 (2016).
  40. Qubits Based on Polariton Rabi Oscillators. S. S. Demirchyan, I. Yu. Chestnov, A. P. Alodjants, M. M. Glazov and A. V. Kavokin in Phys. Rev. Lett. 112:196403 (2014).
  41. Template:Detuning control of Rabi vortex oscillations in light-matter coupling
  42. Imaging Spatiotemporal Hong-Ou-Mandel Interference of Biphoton States of Extremely High Schmidt Number. F. Devaux, A. Mosset, P. Moreau and E. Lantz in Phys. Rev. X 10:031031 (2020).
  43. Polariton interactions in semiconductor microcavities. B. Deveaud in C. R. Phys. 17:874 (2016).
  44. 🕮Handbooks in Operations Research and Management Science, chapter "4. Nonuniform Random Variate Generation", p. 83. L. Devroye. North Holland, 2006. [DOI: 10.1016/s0927-0507(06)13004-2]
  45. Quantum mechanics and reality. B. DeWitt in Physics Today 23:30 (1970).
  46. Suppression of the bottleneck in semiconductor microcavities. T. Doan and D. T. Thoai in Solid State Commun. 123:427 (2002).
  47. Condensation kinetics of microcavity polaritons with scattering by phonons and polaritons. T. D. Doan, Huy Thien Cao, D. B. Tran Thoai and H. Haug in Phys. Rev. B 72:085301 (2005).
  48. Coherence of condensed microcavity polaritons calculated within Boltzmann-Master equations. T. D. Doan, H. Thien Cao, D. B. Tran Thoai and H. Haug in Phys. Rev. B 78:205306 (2008).
  49. Explanation of the quantum phenomenon of off-resonant cavity-mode emission. S. Echeverri-Arteaga, H. Vinck-Posada and E. Gómez in Phys. Rev. A 97:043815 (2018).
  50. The strange attraction phenomenon in cQED: The intermediate quantum coupling regime. S. Echeverri-Arteaga, H. Vinck-Posada and E. Gómez in Optik 183:389 (2019).
  51. Imaging high-dimensional spatial entanglement with a camera. M. Edgar, D. Tasca, F. Izdebski, R. Warburton, J. Leach, M. Agnew, G. Buller, R. Boyd and M. Padgett in Nature Comm. 3:984 (2012).
  52. Randomness in quantum mechanics—nature's ultimate cryptogram?. T. Erber and S. Putterman in Nature 318:41 (1985).
  53. Oscillatory solutions of the rate equations. J. Fletcher in Phys. Lett. A 27:721 (1968).
  54. Metallic alloys. J. Friedel in Il Nuovo Cimento 7:287 (1958).
  55. Long-range coherence and energy storage in biological systems. H. Fröhlich in Int. J. of Quant. Chem. 2:641 (1968).
  56. Bose condensation of strongly excited longitudinal electric modes. H. Fröhlich in Phys. Lett. A 26:402 (1968).
  57. An introduction to QBism with an application to the locality of quantum mechanics. C. A. Fuchs, N. D. Mermin and R. Schack in Am. J. Phys. 82:749 (2014).
  58. QBism: Quantum theory as a hero's handbook. C. A. Fuchs and B. C. Stacey in [[]] 197:133 (2016).
  59. A bosonic Josephson junction. R. Gati and M. K. Oberthaler in J. Phys. B.: At. Mol. Phys. 40:R61 (2007).
  60. Strong Extinction of a Laser Beam by a Single Molecule. I. Gerhardt, G. Wrigge, P. Bushev, G. Zumofen, M. Agio, R. Pfab and V. Sandoghdar in Phys. Rev. Lett. 98:033601 (2007).
  61. Quantum computing with exciton-polariton condensates. S. Ghosh and T. C. H. Liew in npj Quantum Inf. 6:16 (2020).
  62. Hierarchy of continuous-variable quantum resource theories. G. Gianfelici, H. Kampermann and D. Bruß in New J. Phys. 23:113008 (2021).
  63. Nobel Lecture: One hundred years of light quanta. R. J. Glauber in Rev. Mod. Phys. 78:1267 (2006).
  64. Photon Correlations. R. J. Glauber in Phys. Rev. Lett. 10:84 (1963).
  65. The Quantum Theory of Optical Coherence. R. J. Glauber in Phys. Rev. 130:2529 (1963).
  66. Coherent and Incoherent States of the Radiation Field. R. J. Glauber in Phys. Rev. 131:2766 (1963).
  67. Coming of Age with Quantum Information: Notes on a Paulian Idea.. D. Greenberger in Am. J. Phys. 79:1083 (2011).
  68. Numerical simulations of the polariton kinetic energy distribution in GaAs quantum-well microcavity structures. V. E. Hartwell and D. W. Snoke in Phys. Rev. B 82:075307 (2010).
  69. Observation of two-photon emission from semiconductors. A. Hayat, P. Ginzburg and M. Orenstein in Nature Photon. 2:256 (2008).
  70. Quantum walk comb in a fast gain laser. I. Heckelmann, M. Bertrand, A. Dikopoltsev, M. Beck, G. Scalari and J. Faist in Science 382:434 (2023).
  71. Ensemble versus Individual System in Quantum Optics. G. C. Hegerfeldt in Fortschr. Phys. <595::aid-prop595>3.0.co;2-m 46:595 (1998).
  72. David Bohm Interview. D. Home in Science Today 25 (1986).
  73. Whatever Happened to Solid State Physics?. J. J. Hopfield in Annu. Rev. Condens. Matter Phys. 5:1 (2014).
  74. Theory of the Contribution of Excitons to the Complex Dielectric Constant of Crystals. J. J. Hopfield in Phys. Rev. 112:1555 (1958).
  75. Neural networks and physical systems with emergent collective computational abilities.. J. J. Hopfield in Proc. Natl. Acad. Sci. 79:2554 (1982).
  76. Early stages of continuous wave experiments on cavity-polaritons. R. Houdré in Phys. Stat. Sol. B 242:2167 (2005).
  77. Realization of the Einstein-Podolsky-Rosen Paradox Using Momentum- and Position-Entangled Photons from Spontaneous Parametric Down Conversion. J. Howell, R. Bennink, S. Bentley and R. Boyd in Phys. Rev. Lett. 92:210403 (2004).
  78. Exciton-polariton dynamics of the single site-controlled quantum dot-nanocavity in the coexisting strong-weak coupling regime. J. Huang, W. Liu, M. Sarihan, X. Cheng, A. Miranda, B. Dwir, A. Rudra, E. Kapon and C. Wong in New J. Phys. 25:033015 (2023).
  79. A single-molecule optical transistor. J. Hwang, M. Pototschnig, R. Lettow, G. Zumofen, A. Renn, S. Götzinger and V. Sandoghdar in Nature 460:76 (2009).
  80. Nonequilibrium condensates and lasers without inversion: Exciton-polariton lasers. A. İmamoğlu, R. J. Ram, S. Pau and Y. Yamamoto in Phys. Rev. A 53:4250 (1996).
  81. Quantum dynamics of exciton lasers. A. İmamoğlu and R. J. Ram in Physics Letter A 214:193 (1996).
  82. Shot-by-shot imaging of Hong-Ou-Mandel interference with an intensified sCMOS camera. M. Jachura and R. Chrapkiewicz in Opt. Lett. 40:1540 (2015).
  83. Quantum Phase of a Bose-Einstein Condensate with an Arbitrary Number of Atoms. J. Javanainen and S. M. Yoo in Phys. Rev. Lett. 76:161 (1996).
  84. Spatial correlations of spontaneously down-converted photon pairs detected with a single-photon-sensitive CCD camera. B. Jost, A. Sergienko, A. Abouraddy, B. Saleh and M. Teich in Opt. Express 3:81 (1998).
  85. Squeezing in semiconductor microcavities in the strong-coupling regime. J. Ph. Karr, A. Baas, R. Houdré and E. Giacobino in Phys. Rev. A 69:R031802 (2004).
  86. Formation of an Exciton Polariton Condensate: Thermodynamic versus Kinetic Regimes. J. Kasprzak, D. D. Solnyshkov, R. André, Le Si Dang and G. Malpuech in Phys. Rev. Lett. 101:146404 (2008).
  87. Polariton laser and polariton superfluidity in microcavities. A. Kavokin, G. Malpuech and F. P. Laussy in Phys. Lett. A 306:187 (2003).
  88. Quatron-polaritons: charged quasi-particles having the bosonic statistics. A. Kavokin, D. Solnyshkov and G. Malpuech in J. Phys.: Condens. Matter 19:295212 (2007).
  89. A universal law for random fluctuations. A. Kavokin and S. Kavokina in Science 392:144 (2026).
  90. Exciton-polariton condensation. J. Keeling and N. G. Berloff in Contemp. Phys. 52:131 (2011).
  91. Perfect single-photon sources. S. Khalid and F. P. Laussy in Sci. Rep. 14:2684 (2024).
  92. A Brief History of Time Crystals. V. Khemani, R. Moessner and S. L. Sondhi in arXiv:1910.10745 (2019).
  93. Converting Nonclassicality into Entanglement. N. Killoran, F. Steinh and n. M. Plenio in Phys. Rev. Lett. 116:080402 (2016).
  94. Two-photon interferences of weak coherent lights. H. Kim, O. Kwon and H. S Moon in Sci. Rep. 11:20555 (2021).
  95. Intensity fluctuation spectroscopy of small numbers of dye molecules in a microcavity. S. C. Kitson, P. Jonsson, J. G. Rarity and P. R. Tapster in Phys. Rev. A 58:620 (1998).
  96. Photon antibunching in pulsed squeezed light generated via parametric amplification. M. Koashi, K. Kono, T. Hirano and M. Matsuoka in Phys. Rev. Lett. 71:1164 (1993).
  97. Stable Solid-State Source of Single Photons. C. Kurtsiefer, S. Mayer, P. Zarda and H. Weinfurter in Phys. Rev. Lett. 85:290 (2000).
  98. Coherent Oscillations in an Exciton-Polariton Josephson Junction. K. G. Lagoudakis, B. Piętka, M. Wouters, R. André and B. Deveaud-Plédran in Phys. Rev. Lett. 105:120403 (2010).
  99. Einstein-Podolsky-Rosen paradox in single pairs of images. E. Lantz, S. Denis, P.-A. Moreau and F. Devaux in Opt. Express 23:26472 (2015).
  100. Excitons in crystals. F. P. Laussy and A. Kavokin in Encycl. Cond. Mat. Phys. 3:706 (2024). 
  101. Theory and Concepts of Polariton Condensates. F. P. Laussy Chapter in the Springer book entitled Short and Long Range Quantum Atomic Platforms — Theoretical and Experimental Developments (provisional title), edited by P. G. Kevrekidis, C. L. Hung, and S. I. Mistakidis.
  102. Dynamics of a Tunable Superfluid Junction. L. LeBlanc, A. Bardon, J. McKeever, M. Extavour, D. Jervis, J. Thywissen, F. Piazza and A. Smerzi in Phys. Rev. Lett. 106:025302 (2011).
  103. The future of quantum in polariton systems: opinion. T. C. H. Liew in Opt. Mater. Express 13:1938 (2023).
  104. Single-Photon Hologram of a Zero-Area Pulse. M. Lipka and M. Parniak in Phys. Rev. Lett. 127:163601 (2021).
  105. Statistical Evaluation of Single Nano-Object Fluorescence. M. Lippitz, F. Kulzer and M. Orrit in ChemPhysChem 6:770 (2005).
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  108. Quantifying Quantum Coherence in Polariton Condensates. C. Lüders, M. Pukrop, E. Rozas, C. Schneider, S. Höfling, J. Sperling, S. Schumacher and M. Aßmann in Phys. Rev. X Quantum 2:030320 (2021).
  109. Single Photon Avalanche Diode Arrays for Quantum Imaging and Microscopy. F. Madonini, F. Severini, F. Zappa and F. Villa in Adv. Quantum Technol. 4:2100005 (2021).
  110. Polariton laser: thermodynamics and quantum kinetic theory. G. Malpuech, Y. G. Rubo, F. P. Laussy, P. Bigenwald and A. V. Kavokin in Semicond. Sci. Technol. 18:S395 (2003).
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  116. Template:MediaWiki templates
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  120. Coexistence of strong and weak coupling in ZnO nanowire cavities. T. Michalsky, H. Franke, R. Buschlinger, U. Peschel, M. Grundmann and R. Schmidt-Grund in Eur. Phys. J. Appl. Phys. 74:30502 (2016).
  121. Quadexciton cascade and fine-structure splitting of the triexciton in a single quantum dot. M. R. Molas, A. A. L. Nicolet, A. Babiński and M. Potemski in Europhys. Lett. 113:17004 (2016).
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