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Fabrice P. Lauss𝕪s hun Web
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Scientific Articles

This is the collection of my 5,036 papers archived in sci.bib, with its corresponding key which is the one I use for BibTeX citations.

You can copy a reference by hovering an entry and clicking ✉, or select several entries and use the button that appears. This retains information everybody understand but also specific information holding the paper's laussy.org page if it has one.

  1. The computational complexity of linear optics. S. Aaronson and A. Arkhipov in Proceedings of the 43rd Annual ACM Symposium on Theory of Computing 333 (2011). aaronson11a
  2. Read the fine print. S. Aaronson in Nature Phys. 11:291 (2015). aaronson15a
  3. 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). abbarchi13a
  4. Vacuum Rabi splitting due to strong coupling of a flux qubit and a coplanar-waveguide resonator. A. A. Abdumalikov, Jr., O. Astafiev, Y. Nakamura, Y. A. Pashkin and J.S. Tsai in Phys. Rev. B 78:180502(R) (2008). abdumalikov08a
  5. Catalytic Coherence. J. Åberg in Phys. Rev. Lett. 113:150402 (2014). aberg14a
  6. Coherent Emission from a Disordered Organic Semiconductor Induced by Strong Coupling with Surface Plasmons. S. Aberra Guebrou, C. Symonds, E. Homeyer, J. C. Plenet, Yu. N. Gartstein, V. M. Agranovich and and J. Bellessa in Phys. Rev. Lett. 108:066401 (2012). aberraguebrou12a
  7. 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). abouelela25a
  8. Role of Entanglement in Two-Photon Imaging. A. Abouraddy, B. Saleh, A. Sergienko and M. Teich in Phys. Rev. Lett. 87:123602 (2001). abouraddy01a
  9. Ordering and metastability and phase transitions in two-dimensional systems. A. A. Abrikosov in Zh. Eksp. Teor. Fiz 32:1442 (1957). abrikosov57a
  10. Classification of Mixed Three-Qubit States. A. Acín, D. Bruß, M. Lewenstein and A. Sanpera in Phys. Rev. Lett. 87:040401 (2001). acin01a
  11. Heisenberg-picture operator perturbation theory. J. R. Ackerhalt and K. Rzążewski in Phys. Rev. A 12:2549 (1975). ackerhalt75a
  12. A learning algorithm for Boltzmann machines. D. Ackley, G. Hinton and T. Sejnowski in Cogn. Sci. 9:147 (1985). ackley85a
  13. The mathematical physics of rainbows and glories. J. A. Adam in Phys. Rep. 356:229 (2002). adam02a
  14. Quantum interference in the hydrogen molecule with squeezed light. L. Adhya in Phys. Rev. A 63:043807 (2001). adhya01a
  15. Temporally resolved second-order photon correlations of exciton-polariton Bose-Einstein condensate formation. A. F. Adiyatullin, M. D. Anderson, P. V. Busi, H. Abbaspour, R. André, M. T. Portella-Oberli and B. Deveaud in Appl. Phys. Lett. 107:221107 (2015). adiyatullin15a
  16. Periodic squeezing in a polariton Josephson junction. A. Adiyatullin, M. Anderson, H. Flayac, M. Portella-Oberli, F. Jabeen, C. Ouellet-Plamondon, G. Sallen and B. Deveaud in Nature Comm. 8:1329 (2017). adiyatullin17a
  17. Tunable Room-Temperature Polaritons in the Very Strong Coupling Regime in Quasi-2D Ruddlesden–Popper Perovskites. H. Adl, C. Bennenhei, M. Struve, P. Peksa, M. Dyksik, M. Baranowski, K. Song, M. Gittinger, C. Lienau, J. König, J. Fitzgerald, N. Jasti, F. Eilenberger, P. Plochocka, E. Malic, O. Kyriienko, M. Esmann and C. Schneider in Adv. Opt. Mater. 13:e01392 (2025). adl25a
  18. Prethermalization revealed by the relaxation dynamics of full distribution functions. D. Adu Smith, M. Gring, T. Langen, M. Kuhnert, B. Rauer, R. Geiger, T. Kitagawa, I. Mazets, E. Demler and J. Schmiedmayer in New J. Phys. 15:075011 (2013). adusmith13a
  19. Two-Photon Franson-Type Experiments and Local Realism. S. Aerts, P. Kwiat, [[J.-Template:Å. Larsson]] and M. Żukowski in Phys. Rev. Lett. 83:2872 (1999). aerts99a
  20. Adaptive subwavelength control of nano-optical fields. M. Aeschlimann, M. Bauer, D. Bayer, T. Brixner, F. Javier García de Abajo, W. Pfeiffer, M. Rohmer, C. Spindler and F. Steeb in Nature 446:301 (2007). aeschlimann07a
  21. High-NOON States by Mixing Quantum and Classical Light. I. Afek, O. Ambar and Y. Silberberg in Science 328:879 (2010). afek10a
  22. Rotating-Wave Approximation and Spontaneous Emission. G.S. Agarwal in Phys. Rev. A 4:1778 (1971). agarwal71a
  23. Rotating-Wave Approximation and Spontaneous Emission. G.S. Agarwal in Phys. Rev. A 7:1195 (1973). agarwal73a
  24. Exact Solution for the Influence of Laser Temporal Fluctuations on Resonance Fluorescence. G. S. Agarwal in Phys. Rev. Lett. 37:1383 (1976). agarwal76a
  25. Quantum beats in correlation functions of spontaneously emitted radiation and the transition rates of a multilevel atom. G. S. Agarwal in Phys. Rev. A 15:2380 (1977). agarwal77a
  26. Quantum statistical theory of optical-resonance phenomena in fluctuating laser fields. G. S. Agarwal in Phys. Rev. A 18:1490 (1978). agarwal78a
  27. Vacuum-Field Rabi Splittings in Microwave Absorption by Rydberg Atoms in a Cavity. G.S. Agarwal in Phys. Rev. Lett. 53:1732 (1984). agarwal84a
  28. Exact quantum-electrodynamics results for scattering, emission, and absorption from a Rydberg atom in a cavity with arbitrary Q. G. S. Agarwal and R.R. Puri in Phys. Rev. A 33:1757 (1986). agarwal86a
  29. Steady states in cavity QED due to incoherent pumping. G. S. Agarwal and S. Dutta Gupta in Phys. Rev. A 42:1737 (1990). agarwal90a
  30. Dressed-state lasers and masers. G. S. Agarwal in Phys. Rev. A 42:686 (1990). agarwal90b
  31. Additional vacuum-field Rabi splittings in cavity QED. G.S. Agarwal in Phys. Rev. A 43:2595 (1991). agarwal91a
  32. Nonclassical properties of states generated by the excitations on a coherent state. G. S. Agarwal and K. Tara in Phys. Rev. A 43:492 (1991). agarwal91b
  33. Nonclassical character of states exhibiting no squeezing or sub-Poissonian statistics. G. S. Agarwal and K. Tara in Phys. Rev. A 46:485 (1992). agarwal92a
  34. Dephasing-induced vacuum-field Rabi splittings in microcavities with quantum wells. G. S. Agarwal and S. Dutta Gupta in Phys. Rev. B 56:3613 (1997). agarwal97a
  35. Spectroscopy of strongly coupled atom-cavity systems: A topical review. G. S. Agarwal in J. Mod. Opt. 45:449 (1998). agarwal98a
  36. Cavity polaritons in microcavities containing disordered organic semiconductors. V. M. Agranovich, M. Litinskaia and D. G. Lidzey in Phys. Rev. B 67:85311 (2003). agranovich03b
  37. On the influence of reabsorption on the decay of fluorescence in molecular crystals. V. M. Agranovich in Opt. Spectrosk. 3:84 (1957). agranovich57a
  38. Dispersion of electromagnetic waves in crystals. V.M. Agranovich in J. Exp. Th. Phys. 37:430 (1959). agranovich59a
  39. Effect of retarded interaction on the exciton spectrum in one-dimensional and two-dimensional crystals. V. M. Agranovich and O. A. Dubovskii in JETP Lett. 3:233 (1966). agranovich66a
  40. Organic and inorganic quantum wells in a microcavity: Frenkel-Wannier-Mott excitons hybridization and energy transformation. V. Agranovich, H. Benisty and C. Weisbuch in Solid State Commun. 102:631 (1997). agranovich97a
  41. A new quantum random number generator certified by value indefiniteness. J. Agüero Trejo and C. Calude in Theor. Comput. Sci. 862:3 (2021). aguerotrejo21a
  42. Adiabatic Quantum Computation is Equivalent to Standard Quantum Computation. D. Aharonov, W. van Dam, J. Kempe, Z. Landau, S. Lloyd and O. Regev in Siam J. Comput. 37:166 (2007). aharonov07a
  43. Diamond photonics. I. Aharonovich, A. D. Greentree and S. Prawer in Nature Photon. 5:397 (2011). aharonovich11a
  44. Diamond Nanophotonics. I. Aharonovich and E. Neu in Prog. Theor. Phys. 2:911 (2014). aharonovich14a
  45. Solid-state single-photon emitters. I. Aharonovich, D. Englund and M. Toth in Nature Photon. 10:631 (2016). aharonovich16a
  46. Wave packet shaping for a single-photon source. A. Ahmadian and R. Malekfar in J. Opt. Soc. Am. B 38:783 (2021). ahmadian21a
  47. Optical spectra and exciton-light coupled modes of a spherical semiconductor nanocrystal. H. Ajiki, T. Tsuji, K. Kawano and K. Cho in Phys. Rev. B 66:245322 (2002). ajiki02a
  48. Biexcitonic cavity quantum electrodynamics effect on nonlinear spectra of a quantum dot. H. Ajiki and H. Ishihara in J. Appl. Phys. 104:123105 (2008). ajiki08a
  49. Second-order correlation function of entangled photons from a quantum dot in microcavity. H. Ajiki and H. Ishihara in Phys. Stat. Sol. C 5:2469 (2008). ajiki08b
  50. Storage and retrieval of nonclassical photon pairs and conditional single photons generated by the parametric down-conversion process. K. Akiba, K. Kashiwagi, M. Arikawa and M. Kozuma in New J. Phys. 11:013049 (2009). akiba09a
  51. Stimulated Emission from the Biexciton in a Single Self-Assembled II-VI Quantum Dot. I. A. Akimov, J. T. Andrews and F. Henneberger in Phys. Rev. Lett. 96:067401 (2006). akimov06a
  52. Entangled Photon Pairs from Semiconductor Quantum Dots. N. Akopian, N. H. Lindner, E. Poem, Y. Berlatzky, J. Avron, D. Gershoni, B. D. Gerardot and P. M. Petroff in Phys. Rev. Lett. 96:130501 (2006). akopian06a
  53. Decoherence and coherent population transfer between two coupled systems. U. Akram, Z. Ficek and S. Swain in Phys. Rev. A 62:013413 (2000). akram00a
  54. Coherent state monitoring in quantum dots. A. N. Al-Ahmadi and S. E. Ulloa in Phys. Rev. B 70:201302 (2004). alahmadi04a
  55. Efficient bipartite quantum state purification in arbitrary dimensional Hilbert spaces. G. Alber, A. Delgado, N. Gisin and I. Jex in J. Phys. A.: Math. Gen. 34:8821 (2001). alber01a
  56. Direct Observation of Tunneling and Nonlinear Self-Trapping in a Single Bosonic Josephson Junction. M. Albiez, R. Gati, J. Fölling, S. Hunsmann, M. Cristiani and M. K. Oberthaler in Phys. Rev. Lett. 95:010402 (2005). albiez05a
  57. Correlations Genuine and Spurious in Pearson and Yule. J. Aldrich in Stat. Sci. 10:364 (1995). aldrich95a
  58. Radiative coupling and weak lasing of exciton-polariton condensates. I. L. Aleiner, B. L. Altshuler and Y. G. Rubo in Phys. Rev. B 85:121031(R) (2012). aleiner12a
  59. 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). alen06a
  60. Oscillator strength reduction induced by external electric fields in self-assembled quantum dots and rings. B. Alén, J. Bosch, D. Granados, J. Martínez-Pastor, J. M. García and L. González in Phys. Rev. B 75:045319 (2007). alen07a
  61. Stimulated scattering and its dynamics in semiconductor microcavities at 80 K under nonresonant excitation conditions. A. Alexandrou, G. Bianchi, E. Péronned, B. Hallé, F. Boeuf, R. André, R. Romestain and Le Si Dang in Phys. Rev. B 64:233318 (2001). alexandrou01a
  62. Resonantly hybridized excitons in moiré superlattices in van der Waals heterostructures. E. M. Alexeev, D. A. Ruiz-Tijerina, M. Danovich, M. J. Hamer, D. J. Terry, P. K. Nayak, S. Ahn, S. Pak, J. Lee, J. I. Sohn, M. R. Molas, M. Koperski, K. Watanabe, T. Taniguchi, K. S. Novoselov, R. V. Gorbachev, H. Suk Shin, Vl. I. Fal'ko and A. I. Tartakovskii in Nature 567:81 (2019). alexeev19a
  63. Nobel Lecture: the double heterostructure concept and its applications in physics, electronics, and technology. Z. I. Alferov in Rev. Mod. Phys. 73:767 (2001). alferov01a
  64. Effects of broadening mechanisms on atomic resonance fluorescence. A Al-Hilfy and R Loudon in J. Phys. B.: At. Mol. Phys. 15:2819 (1982). alhilfy82a
  65. 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). alhilfy85a
  66. 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). ali97a
  67. Two-pion Bose-Einstein correlations in central Pb-Pb collisions at $\sqrt{s_\mathrm{NN}}=\SI{2.76}$TeV. ALICE collaboration in Phys. Lett. B 696:328 (2011). alice11a
  68. Master equations for a damped nonlinear oscillator and the validity of the Markovian approximation. R. Alicki in Phys. Rev. A 40:4077 (1989). alicki89a
  69. Orbital angular momentum of light and the transformation of Laguerre-Gaussian laser modes. L. Allen, M. W. Beijersbergen, R. J. C. Spreeuw and J. P. Woerdman in Phys. Rev. A 45:8185 (1992). allen92a
  70. Model for an exciton mechanism of superconductivity. D. Allender, J. Bray and J. Bardeen in Phys. Rev. B 7:1020 (1973). allender73a
  71. Cavity superconductor-polaritons. A. A. Allocca, Z. M. Raines, J. B. Curtis and V. M. Galitski in Phys. Rev. B 99:020504(R) (2019). allocca19a
  72. Evidence for a Bose-Einstein condensate of excitons. M. Alloing, M. Beian, M. Lewenstein, D. Fuster, Y. González, L. González, R. Combescot, M. Combescot and F. Dubin in Phys. Rev. Lett. 107:10012 (2014). alloing14a
  73. Quantum droplets of electrons and holes. A. E. Almand-Hunter, H. Li, S. T. Cundiff, M. Mootz, M. Kira and S. W. Koch in Nature 506:471 (2014). almandhunter14a
  74. Coherence measurements of polaritons in thermal equilibrium reveal a power law for two-dimensional condensates. H. Alnatah, Q. Yao, J. Beaumariage, S. Mukherjee, M. C. Tam, Z. Wasilewski, K. West, K. Baldwin, L. N. Pfeiffer and D. W. Snoke in Science Advances 10:eadk6960 (2024). alnatah24a
  75. Bose-Einstein Condensation of Polaritons at Room Temperature in a GaAs/AlGaAs Structure. H. Alnatah, S. Liang, Q. Yao, Q. Wan, J. Beaumariage, K. West, K. Baldwin, L. N. Pfeiffer and D. W. Snoke in ACS Photonics 12:48 (2024). alnatah24b
  76. Quantum storage and cloning of light states in EIT-like medium. A. P. Alodjants and S. M. Arakelian in Int. J. Mod. Phys. B 20:1593 (2006). alodjants06a
  77. Storage of quantum optical information based on the intracavity polaritons under the Bose-Einstein condensation condition. A. P. Alodjants, S. M. Arakelian and A. Yu. Leksin in lasphy 17:1432 (2007). alodjants07a
  78. Josephson dynamics for coupled polariton modes under the atom–field interaction in the cavity. A.P. Alodjants, S.M. Arakelian, S.N. Bagayev, V.S. Egorov and A.Y. Leksin in Appl. Phys. B 89:81 (2007). alodjants07b
  79. Multiply charged vortex states of polariton condensates. S. N. Alperin and N. G. Berloff in Optica 8:301 (2021). alperin21a
  80. Extending the Hong-Ou-Mandel effect: The power of nonclassicality. P. M. Alsing, R. J. Birrittella, C. C. Gerry, J. Mimih and P. L. Knight in Phys. Rev. A 105:013712 (2022). alsing22a
  81. Dynamic Stark effect for the Jaynes-Cummings system. P. Alsing, D.-S. Guo and H. J. Carmichael in Phys. Rev. A 45:5135 (1992). alsing92a
  82. Ancilla-Assisted Quantum Process Tomography. J. B. Altepeter, D. Branning, E. Jeffrey, T. C. Wei, P. G. Kwiat, R. T. Thew, J. L. O'Brien, M. A. Nielsen and A. G. White in Phys. Rev. Lett. 90:193601 (2003). altepeter03a
  83. 🕮Quantum State Estimation, chapter "Qubit Quantum State Tomography". J.B. Altepeter, D. F. V. James and P. G. Kwiat. Springer, 2004[1] altepeter04a
  84. Photonic State Tomography. J.B. Altepeter, E.R. Jeffrey and P. G. Kwiat in Advances in Atomic, Molecular, and Optical Physics 52:105 (2005). altepeter05a
  85. Two-Dimensional Superfluidity of Exciton Polaritons Requires Strong Anisotropy. E. Altman, L. M. Sieberer, L. Chen, S. Diehl and J. Toner in Phys. Rev. X 5:011017 (2015). altman15a
  86. How to administer an antidote to Schrödinger’s cat. J. Álvarez, M. IJspeert, O. Barter, B. Yuen, T. D. Barrett, D. Stuart, J. Dilley, A. Holleczek and A. Kuhn in J. Phys. B.: At. Mol. Phys. 55:054001 (2022). alvarez22a
  87. The Forbidden Quantum Adder. U. Alvarez-Rodriguez, M. Sanz, L. Lamata and E. Solano in Sci. Rep. 5:11983 (2015). alvarezrodriguez15a
  88. An experimental method for the observation of r.f. transitions and laser beat resonances in oriented Na vapour. G. Alzetta, A. Gozzini, L. Moi and G. Orriols in Nuov. Cim. B 36:5 (1976). alzetta76a
  89. X-ray and Neutron Scattering of Water. K. Amann-Winkel, M. Bellissent-Funel, L. E. Bove, T. Loerting, A. Nilsson, A. Paciaroni, D. Schlesinger and L. Skinner in Chem. Rev. 116:7570 (2016). amannwinkel16a
  90. Tunneling Between Superconductors. V. Ambegaokar and A. Baratoff in Phys. Rev. Lett. 10:486 (1963). ambegaokar63a
  91. Fluorescence photon antibunching from single molecules on a surface. W. P. Ambrose, P. M. Goodwin, J. Enderlein, D. J. Semin, J. C. Martin and R. A. Keller in Chem. Phys. Lett. 269:365 (1997). ambrose97a
  92. Perspectives in superfluidity in resonantly driven polariton fluids. I. Amelio and I. Carusotto in Phys. Rev. B 101:064505 (2020). amelio20a
  93. Collective fluid dynamics of a polariton condensate in a semiconductor microcavity. A. Amo, D. Sanvitto, F. P. Laussy, D. Ballarini, E. del Valle, M. D. Martín, A. Lemaître, J. Bloch, D. N. Krizhanovskii, M. S. Skolnick, C. Tejedor and L. Viña in Nature 457:291 (2009). amo09a
  94. Superfluidity of polaritons in semiconductor microcavities. A. Amo, J. Lefrère, S. Pigeon, C. Adrados, C. Ciuti, I. Carusotto, R. Houdré, E. Giacobino and A. Bramati in Nature Phys. 5:805 (2009). amo09b
  95. Exciton-polariton spin switches. A. Amo, T. C. H. Liew, C. Adrados, R. Houdré, E. Giacobino, A. V. Kavokin and A. Bramati in Nature Photon. 4:361 (2010). amo10a
  96. Light engineering of the polariton landscape in semiconductor microcavities. A. Amo, S. Pigeon, C. Adrados, R. Houdré, E. Giacobino, C. Ciuti and A. Bramati in Phys. Rev. B [10.1103/PhysRevB.82.081301 82:081301(R)] (2010). amo10b
  97. Polariton Superfluids Reveal Quantum Hydrodynamic Solitons. A. Amo, S. Pigeon, D. Sanvitto, V. G. Sala, R. Hivet, I. Carusotto, F. Pisanello, G. Leménager, R. Houdré, E. Giacobino, C. Ciuti and A. Bramati in Science 332:1167 (2011). amo11a
  98. Comment on “Linear Wave Dynamics Explains Observations Attributed to Dark Solitons in a Polariton Quantum Fluid”. A. Amo, J. Bloch, A. Bramati, I. Carusotto, C. Ciuti, B. Deveaud, E. Giacobino, G. Grosso, A. Kamchatnov, G. Malpuech, N. Pavloff, S. Pigeon, D. Sanvitto and D. Solnyshkov in Phys. Rev. Lett. 115:089401 (2015). amo15a
  99. Exciton-polaritons in lattices: A non-linear photonic simulator. A. Amo and J. Bloch in C. R. Phys. 17:934 (2016). amo16a
  100. When quantum optics meets topology. A. Amo in Science 359:638 (2018). amo18a
  101. Nano-manipulation of diamond-based single photon sources. E. Ampem-Lassen, D. A. Simpson, B. C. Gibson, S. Trpkovski, F. M. Hossain, S. T. Huntington, K. Ganesan, L. C. L. Hollenberg and S. Prawer in Opt. Express 17:11287 (2009). ampemlassen09a
  102. Electro-optical switching between polariton and cavity lasing in an InGaAs quantum well microcavity. M. Amthor, S. Weißenseel, J. Fischer, M. Kamp, C. Schneider and S. Höfling in Opt. Express 22:31146 (2014). amthor14a
  103. Optical bistability in electrically driven polariton condensates. M. Amthor, T. C. H. Liew, C. Metzger, S. Brodbeck, L. Worschech, M. Kamp, I. A. Shelykh, A. V. Kavokin, C. Schneider and S. Höfling in Phys. Rev. B 91:081404(R) (2015). amthor15a
  104. Entanglement dynamics of qubits in a common environment. J.-H. An, S.-J. Wang and H.-G. Luo in Physica A 382:753 (2007). an07a
  105. Signatures of ultra-strong light-matter coupling regime. A. A. Anappara, S. De Liberato, A. Tredicucci, C. Ciuti, G. Biasiol, L. Sorba and F. Beltram in Phys. Rev. B 79:201303(R) (2009). anappara09a
  106. 30 years of squeezed light generation. U. L. Andersen, T. Gehring, C. Marquardt and G. Leuchs in Phys. Scr. 91:053001 (2016). andersen16a
  107. Vortex Precession in Bose-Einstein Condensates: Observations with Filled and Empty Cores. B. P. Anderson, P. C. Haljan, C. E. Wieman and E. A. Cornell in Phys. Rev. Lett. 85:2857 (2000). anderson00a
  108. Quantum Teleportation Using Highly Coherent Emission from Telecom ℂ-Band Quantum Dots. M. Anderson, T. Müller, J. Huwer, J. Skiba-Szymańska, A. B. Krysa, R. M. Stevenson, J. Heffernan D. A., Ritchie and A. J. Shields in npj Quantum Inf. 6:14 (2020). anderson20a
  109. Neutron Production and Absorption in Uranium. H. L. Anderson, E. Fermi and Leo Szilard in Phys. Rev. [10.1103/PhysRev.56.284 56:284] (1939). anderson39a
  110. Probable Observation of the Josephson Superconducting Tunneling Effect. P. W. Anderson and J. M. Rowell in Phys. Rev. Lett. 10:230 (1963). anderson63a
  111. Considerations on the Flow of Superfluid Helium. P. W. Anderson in Rev. Mod. Phys. 38:298 (1966). anderson66a
  112. How Josephson discovered his effect. P. W. Anderson in Physics Today 23:33 (1970). anderson70a
  113. Observation of Bose-Einstein Condensation in a Dilute Atomic Vapor. M. H. Anderson, J. R. Ensher, M. R. Matthews, C. E. Wieman and E. A. Cornell in Science 269:198 (1995). anderson95a
  114. Single-qubit lasing in the strong-coupling regime. S. André, P.-Q. Jin, V. Brosco, J. H. Cole, A. Romito, A. Shnirman and G. Schön in Phys. Rev. A 82:053802 (2010). andre10a
  115. Vacuum-Field Rabi Splitting for Quantum Boxes in Pillar Microcavities?. L.C. Andreani, G. Panzarini and J.-M. Gérard in Phys. Stat. Sol. A 178:145 (2000). andreani00a
  116. Accurate theory of excitons in GaAs-Ga$_{1-x}$Al$_x$As quantum wells. L. C. Andreani and A. Pasquarello in Phys. Rev. B 42:8928 (1990). andreani90a
  117. Radiative lifetime of free excitons in quantum wells. L. C. Andreani, F. Tassone and F. Bassani in Solid State Commun. 77:641 (1991). andreani91a
  118. Exciton-polaritons in quantum wells. L. Andreani in Phys. Scr. T35:111 (1991). andreani91b
  119. 🕮Optical transitions, excitons, and polaritons in bulk and low-dimensional semiconductor structures, in Confined Electrons and Photons: New Physics and Devices, p. 57. L. C. Andreani. Plenum Press, New York, 1994. [DOI: 10.1007/978-1-4615-1963-8_3] andreani94a
  120. Effect of inhomogeneous broadening on optical properties of excitons in quantum wells. L. C. Andreani, G. Panzarini, A. V. Kavokin and M. R. Vladimirova in Phys. Rev. B 57:4670 (1998). andreani98a
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