Artículo
Energy barriers between metastable states in first-order quantum phase transitions
Fecha de publicación:
05/02/2018
Editorial:
American Physical Society
Revista:
Physical Review A
ISSN:
2469-9934
e-ISSN:
1050-2947
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
A system of neutral atoms trapped in an optical lattice and dispersively coupled to the field of an optical cavity can realize a variation of the Bose-Hubbard model with infinite-range interactions. This model exhibits a first-order quantum phase transition between a Mott insulator and a charge density wave, with spontaneous symmetry breaking between even and odd sites, as was recently observed experimentally [Landig, Nature (London) 532, 476 (2016)10.1038/nature17409]. In the present paper, we approach the analysis of this transition using a variational model which allows us to establish the notion of an energy barrier separating the two phases. Using a discrete WKB method, we then show that the local tunneling of atoms between adjacent sites lowers this energy barrier and hence facilitates the transition. Within our simplified description, we are thus able to augment the phase diagram of the model with information concerning the height of the barrier separating the metastable minima from the global minimum in each phase, which is an essential aspect for the understanding of the reconfiguration dynamics induced by a quench across a quantum critical point.
Palabras clave:
QUANTUM PHASE TRANSITIONS
,
ULTRACOLD ATOMS
,
LONG-RANGE INTERACTIONS
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Articulos(IFEG)
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Articulos de INST.DE FISICA ENRIQUE GAVIOLA
Citación
Wald, Sascha; Timpanaro, André M.; Cormick, Maria Cecilia; Landi, Gabriel T.; Energy barriers between metastable states in first-order quantum phase transitions; American Physical Society; Physical Review A; 97; 2; 5-2-2018; 023608
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