Resultats globals: 4 registres trobats en 0.02 segons.
Articles, 4 registres trobats
Articles 4 registres trobats  
1.
56 p, 4.4 MB Roadmap on STIRAP applications / Bergmann, Klaas (Technische Universität Kaiserslautern. Fachbereich Physik and Landesforschungszentrum OPTIMAS (Germany)) ; Nägerl, Hanns-Christoph (Universität Innsbruck. Institut für Experimentalphysik und Zentrum für Quantenphysik (Austria)) ; Panda, Cristian (Northwestern University. Center for Fundamental Physics (USA)) ; Gabrielse, Gerald (Northwestern University. Center for Fundamental Physics (USA)) ; Miloglyadov, Eduard (ETH Zürich. Laboratorium für Physikalische Chemie (Switzerland)) ; Quack, Martin (ETH Zürich. Laboratorium für Physikalische Chemie (Switzerland)) ; Seyfang, Georg (ETH Zürich. Laboratorium für Physikalische Chemie (Switzerland)) ; Wichmann, Gunther (ETH Zürich. Laboratorium für Physikalische Chemie (Switzerland)) ; Ospelkaus, Silke (Leibniz Universität Hannover. Institut für Quantenoptik (Germany)) ; Kuhn, Axel (University of Oxford. Clarendon Laboratory (UK)) ; Longhi, Stefano (Politecnico di Milano. Dipartimento di Fisica (Italy)) ; Szameit, Alexander (University of Rostock. Institute for Physics (Germany)) ; Pirro, Philipp (Technische Universität Kaiserslautern. Fachbereich Physik and Landesforschungszentrum OPTIMAS (Germany)) ; Hillebrands, Burkard (Technische Universität Kaiserslautern. Fachbereich Physik and Landesforschungszentrum OPTIMAS (Germany)) ; Zhu, Xue-Feng (Huazhong University of Science and Technology. School of Physics and Wuhan National Laboratory for Optoelectronics (People's Republic of China)) ; Zhu, Jie (Hong Kong Polytechnic University. Department of Mechanical Engineering (People's Republic of China)) ; Drewsen, Michael (Aarhus University. Department of Physics and Astronomy (Denmark)) ; Hensinger, Winfried K. (University of Sussex. Sussex Centre for Quantum Technologies (UK)) ; Weidt, Sebastian (University of Sussex. Sussex Centre for Quantum Technologies (UK)) ; Halfmann, Thomas (Technical University of Darmstadt. Institute of Applied Physics (Germany)) ; Wang, Hai-Lin (University of Oregon. Department of Physics (USA)) ; Paraoanu, Gheorghe Sorin (Aalto University. Department of Applied Physics. QTF Centre of Excellence (Finland)) ; Vitanov, Nikolay V. (St Kliment Ohridski University of Sofia. Faculty of Physics (Bulgaria)) ; Mompart Penina, Jordi (Universitat Autònoma de Barcelona. Departament de Física) ; Busch, Thomas (Okinawa Institute of Science and Technology Graduate University. Quantum Systems Unit (Japan)) ; Barnum, Timothy J. (Massachusetts Institute of Technology. Department of Chemistry (USA)) ; Grimes, David D. (Harvard-MIT Center for Ultracold Atoms (USA)) ; Field, Robert W. (Massachusetts Institute of Technology. Department of Chemistry (USA)) ; Raizen, Mark G. (University of Texas at Austin. Department of Physics. Center for Nonlinear Dynamics (USA)) ; Narevicius, Edvardas (Weizmann Institute of Science (Israel). Department of Chemical Physics) ; Auzinsh, Marcis (University of Latvia. Department of Physics (Latvia)) ; Budker, Dmitry (University of California at Berkeley. Department of Physics (USA)) ; Pálffy, Adriana (Max Planck Institute for Nuclear Physics (Germany)) ; Keitel, Christoph H. (Max Planck Institute for Nuclear Physics (Germany))
STIRAP (stimulated Raman adiabatic passage) is a powerful laser-based method, usually involving two photons, for efficient and selective transfer of populations between quantum states. A particularly interesting feature is the fact that the coupling between the initial and the final quantum states is via an intermediate state, even though the lifetime of the latter can be much shorter than the interaction time with the laser radiation. [...]
2019 - 10.1088/1361-6455/ab3995
Journal of Physics B: Atomic, Molecular and Optical Physics, Vol. 52, Issue 20 (October 2019) , p. 202001  
2.
15 p, 6.3 MB Evidence for the weak coupling scenario of the Peierls transition in the blue bronze / Guster, Bogdan (Institut Català de Nanociència i Nanotecnologia) ; Pruneda, Miguel (Institut Català de Nanociència i Nanotecnologia) ; Ordejon, Pablo (Institut Català de Nanociència i Nanotecnologia) ; Canadell Casanova, Enric 1950- (Institut de Ciència de Materials de Barcelona) ; Pouget, Jean-Paul (Université Paris-Sud. Laboratoire de Physique des Solides)
On the basis of first-principles DFT calculations the wave-vector and temperature dependencies of the Lindhard response function of the blue bronze K₀. ₃MoO₃ have been calculated. The kFI+kFII interband component of the response, which is responsible for the Peierls instability, has been quantitatively analyzed. [...]
2019 - 10.1103/PhysRevMaterials.3.055001
Physical review materials, Vol. 3, issue 5 (May 2019) , art. 55001  
3.
11 p, 2.2 MB Transport of ultracold atoms between concentric traps via spatial adiabatic passage / Polo Gomez, Juan (Universitat Autònoma de Barcelona. Departament de Física) ; Benseny Cases, Albert (Okinawa Institute of Science and Technology. Quantum Systems Unit) ; Busch, Thomas (Okinawa Institute of Science and Technology. Quantum Systems Unit) ; Ahufinger, Verònica (Universitat Autònoma de Barcelona. Departament de Física) ; Mompart Penina, Jordi (Universitat Autònoma de Barcelona. Departament de Física)
Spatial adiabatic passage processes for ultracold atoms trapped in tunnel-coupled cylindrically symmetric concentric potentials are investigated. Specifically, we discuss the matter-wave analog of the rapid adiabatic passage (RAP) technique for a high fidelity and robust loading of a single atom into a harmonic ring potential from a harmonic trap, and for its transport between two concentric rings. [...]
2016 - 10.1088/1367-2630/18/1/015010
New journal of physics, Vol. 18 (January 2016) , art. 15010  
4.
34 p, 109.9 KB Principio de Boltzmann y primeras ideas cuánticas en Einstein / Navarro Veguillas, Luis ; Pérez Canals, Enric
El papel crucial jugado por la mecánica estadística en las aportaciones de Einstein a la teoría cuántica ha sido destacado en repetidas ocasiones. No obstante, en el presente trabajo ponemos de manifiesto que la actitud de Einstein acerca del principio de Boltzmann fue más compleja de lo que normalmente se admite. [...]
2002
Dynamis : Acta Hispanica ad Medicinae Scientiarumque. Historiam Illustrandam, V. 22 (2002) p. 377-410  

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