Sur la modélisation de l’interaction entre polarons et cristaux quantiques
- [1] Université Grenoble 1 et CNRS, LPMMC, UMR 5493 BP 166 38042 Grenoble, France
Séminaire Laurent Schwartz — EDP et applications (2012-2013)
- page 1-24
- ISSN: 2266-0607
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topRougerie, Nicolas. "Sur la modélisation de l’interaction entre polarons et cristaux quantiques." Séminaire Laurent Schwartz — EDP et applications (2012-2013): 1-24. <http://eudml.org/doc/275816>.
@article{Rougerie2012-2013,
abstract = {Je résume dans ce texte des travaux récents, en collaboration avec Mathieu Lewin, sur la modélisation des (multi-)polarons. Il s’agit de décrire le système physique formé par l’interaction entre une ou plusieurs particules chargées et un cristal constitué d’un nombre infini de noyaux classiques et d’électrons quantiques. Nous définissons un nouveau modèle en couplant l’équation de Schrödinger pour les particules chargées avec un modèle de type Hartree-Fock réduit décrivant la réaction des électrons du cristal. Nous étudions l’existence d’états liés (minimiseurs de la fonctionnelle d’énergie) et démontrons que le modèle de Pekar pour le grand polaron peut se déduire du nôtre dans une limite macroscopique.},
affiliation = {Université Grenoble 1 et CNRS, LPMMC, UMR 5493 BP 166 38042 Grenoble, France},
author = {Rougerie, Nicolas},
journal = {Séminaire Laurent Schwartz — EDP et applications},
language = {fre},
pages = {1-24},
publisher = {Institut des hautes études scientifiques & Centre de mathématiques Laurent Schwartz, École polytechnique},
title = {Sur la modélisation de l’interaction entre polarons et cristaux quantiques},
url = {http://eudml.org/doc/275816},
year = {2012-2013},
}
TY - JOUR
AU - Rougerie, Nicolas
TI - Sur la modélisation de l’interaction entre polarons et cristaux quantiques
JO - Séminaire Laurent Schwartz — EDP et applications
PY - 2012-2013
PB - Institut des hautes études scientifiques & Centre de mathématiques Laurent Schwartz, École polytechnique
SP - 1
EP - 24
AB - Je résume dans ce texte des travaux récents, en collaboration avec Mathieu Lewin, sur la modélisation des (multi-)polarons. Il s’agit de décrire le système physique formé par l’interaction entre une ou plusieurs particules chargées et un cristal constitué d’un nombre infini de noyaux classiques et d’électrons quantiques. Nous définissons un nouveau modèle en couplant l’équation de Schrödinger pour les particules chargées avec un modèle de type Hartree-Fock réduit décrivant la réaction des électrons du cristal. Nous étudions l’existence d’états liés (minimiseurs de la fonctionnelle d’énergie) et démontrons que le modèle de Pekar pour le grand polaron peut se déduire du nôtre dans une limite macroscopique.
LA - fre
UR - http://eudml.org/doc/275816
ER -
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