(Created page with '= Publications = == Books == == Selected list of research papers == (you can also see our full list of research papers). # ''Strong-coupling of quantum dots in microcavit…')
 
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= Publications =
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We work on microcavity physics: the quantum coupling of light and matter in a cavity of micrometric size (realized with alternating layers of semiconductors).
  
== Books ==
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The cavity can sandwich an entire plane, in which case the physics is in 2D, or it can circle around a single, atom-like object, typically a quantum dot, in which case it is 0D. (We focus on these two cases but 1D and 3D are also possible).
  
== Selected list of research papers ==
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The 2D case is interesting for macroscopic degeneracy, with a lot of particles acting as one, with outreaches such as Bose-Einstein condensation, superfluidity, superconductivity, etc.
  
(you can also see our [[full list of research papers]]).
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The 0D case is interesting for microscopic isolation, with a few quanta of excitations ruling the dynamics of the system, with outreaches such as entanglement, quantum information processing, etc.
  
# ''Strong-coupling of quantum dots in microcavities'', F. P. Laussy, E. del Valle and C. Tejedor. Phys. Rev. Lett. 101, 083601 (2008).
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Below is a picture of a spectral shape for a quantum dot in a microcavity in the nonlinear regime, with, superimposed, the so-called Jaynes-Cummings ladder, an insight into ''full-field quantization'', where also the optical field is quantized, an extreme you don't usually require for most theoretical descriptions. This is this regime which interests us particularly.
# ''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. Martin, A. Lemaître, J. Bloch, D.N. Krizhanovskii, M.S. Skolnick, C. Tejedor and L. Viña, Nature.  
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== In progress ==
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<center>[[Image:Jaynes-cummings-incoherent-pumping.png|700px]]</center>
  
# ''Luminescence spectra of quantum dots in microcavities. I. Bosons'', F. P. Laussy, E. del Valle and C. Tejedor. arXiv:0807.3194 (2008).
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You can see our most notable [[publications]] or what we've been up to recently  [http://arxiv.org/find/all/1/OR+au:+Laussy+au:+del_valle_E/0/1/0/past/0/1 on the arXiv].
# ''Luminescence spectra of quantum dots in microcavities. II. Fermions'', E. del Valle, F. P. Laussy and C. Tejedor. arXiv:0812.2694 (2008)
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# ''Quantitative Description of Strong-Coupling of Quantum Dots in Microcavities'', F. P. Laussy, E. del Valle and C. Tejedor. Accepted in the AIP ICPS29 Conf (2008). arXiv:0808.3215 (2008).
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# ''Dynamics of formation and decay of coherence in a polariton condensate'', E. del Valle, D. Sanvitto, F.P. Laussy, A. Amo, D. Ballarini, R. André, C. Tejedor and L. Viña.
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= Conferences & talks =
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== Talks in conferences ==
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== Posters in conferences ==
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== School ==
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== Seminars ==
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Revision as of 21:08, 28 January 2010

We work on microcavity physics: the quantum coupling of light and matter in a cavity of micrometric size (realized with alternating layers of semiconductors).

The cavity can sandwich an entire plane, in which case the physics is in 2D, or it can circle around a single, atom-like object, typically a quantum dot, in which case it is 0D. (We focus on these two cases but 1D and 3D are also possible).

The 2D case is interesting for macroscopic degeneracy, with a lot of particles acting as one, with outreaches such as Bose-Einstein condensation, superfluidity, superconductivity, etc.

The 0D case is interesting for microscopic isolation, with a few quanta of excitations ruling the dynamics of the system, with outreaches such as entanglement, quantum information processing, etc.

Below is a picture of a spectral shape for a quantum dot in a microcavity in the nonlinear regime, with, superimposed, the so-called Jaynes-Cummings ladder, an insight into full-field quantization, where also the optical field is quantized, an extreme you don't usually require for most theoretical descriptions. This is this regime which interests us particularly.

Jaynes-cummings-incoherent-pumping.png

You can see our most notable publications or what we've been up to recently on the arXiv.