Statistical Complexity of the Coriolis Antipairing Effect

Using the entropic quantifier called statistical complexity, we investigate the interplay between (1) pairing interactions between fermions, can be viewed as analogous with superconductivity based on Cooper pairs; (2) rotations of the system as a whole around an axis; and (3) thermal excitations. Tw...

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Main Authors: Flavia Pennini, Angelo Plastino
Format: Article
Language:English
Published: MDPI AG 2019-06-01
Series:Entropy
Subjects:
Online Access:https://www.mdpi.com/1099-4300/21/6/558
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author Flavia Pennini
Angelo Plastino
author_facet Flavia Pennini
Angelo Plastino
author_sort Flavia Pennini
collection DOAJ
description Using the entropic quantifier called statistical complexity, we investigate the interplay between (1) pairing interactions between fermions, can be viewed as analogous with superconductivity based on Cooper pairs; (2) rotations of the system as a whole around an axis; and (3) thermal excitations. Two different ordering processes are at work: alignment and pairing of two fermions to total spin zero. They compete among themselves and with thermal disorder. A complex physics ensues as a consequence. The existence of novel phenomena is revealed by the behavior of the statistical complexity. In particular, it is seen how order can arise out of disorder in originating high-temperature superconductivity.
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spelling doaj.art-2216d0df280e4eaaa374df81290268412022-12-22T01:57:46ZengMDPI AGEntropy1099-43002019-06-0121655810.3390/e21060558e21060558Statistical Complexity of the Coriolis Antipairing EffectFlavia Pennini0Angelo Plastino1Departamento de Física, Universidad Católica del Norte, Av. Angamos 0610, Antofagasta 1240000, ChileInstituto de Física La Plata–CCT-CONICET, Universidad Nacional de La Plata, C.C. 727, La Plata 1900, ArgentinaUsing the entropic quantifier called statistical complexity, we investigate the interplay between (1) pairing interactions between fermions, can be viewed as analogous with superconductivity based on Cooper pairs; (2) rotations of the system as a whole around an axis; and (3) thermal excitations. Two different ordering processes are at work: alignment and pairing of two fermions to total spin zero. They compete among themselves and with thermal disorder. A complex physics ensues as a consequence. The existence of novel phenomena is revealed by the behavior of the statistical complexity. In particular, it is seen how order can arise out of disorder in originating high-temperature superconductivity.https://www.mdpi.com/1099-4300/21/6/558fermionsstatistical complexityexactly solvable many-body modelnuclear superconductivity
spellingShingle Flavia Pennini
Angelo Plastino
Statistical Complexity of the Coriolis Antipairing Effect
Entropy
fermions
statistical complexity
exactly solvable many-body model
nuclear superconductivity
title Statistical Complexity of the Coriolis Antipairing Effect
title_full Statistical Complexity of the Coriolis Antipairing Effect
title_fullStr Statistical Complexity of the Coriolis Antipairing Effect
title_full_unstemmed Statistical Complexity of the Coriolis Antipairing Effect
title_short Statistical Complexity of the Coriolis Antipairing Effect
title_sort statistical complexity of the coriolis antipairing effect
topic fermions
statistical complexity
exactly solvable many-body model
nuclear superconductivity
url https://www.mdpi.com/1099-4300/21/6/558
work_keys_str_mv AT flaviapennini statisticalcomplexityofthecoriolisantipairingeffect
AT angeloplastino statisticalcomplexityofthecoriolisantipairingeffect