Artículo
Quantum thermodynamics in a static de Sitter space-time and initial state of the universe
Fecha de publicación:
11/2019
Editorial:
Springer
Revista:
European Physical Journal C: Particles and Fields
ISSN:
1434-6044
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
Using Relativistic Quantum Geometry we study back-reaction effects of space-time inside the causal horizon of a static de Sitter metric, in order to make a quantum thermodynamical description of space-time. We found a finite number of discrete energy levels for a scalar field from a polynomial condition of the confluent hypergeometric functions expanded around r= 0. As in the previous work, we obtain that the uncertainty principle is valid for each energy level on sub-horizon scales of space-time. We found that temperature and entropy are dependent on the number of sub-states on each energy’s level and the Bekenstein–Hawking temperature of each energy level is recovered when the number of sub-states of a given level tends to infinity. We propose that the primordial state of the universe could be described by a de Sitter metric with Planck energy Ep=mpc2, and a B–H temperature: TBH=(ħc2πlpKB).
Palabras clave:
QUANTUM THERMODYNAMICS
,
DE SITTER SPACE-TIME
Archivos asociados
Licencia
Identificadores
Colecciones
Articulos(IFIMAR)
Articulos de INST.DE INVESTIGACIONES FISICAS DE MAR DEL PLATA
Articulos de INST.DE INVESTIGACIONES FISICAS DE MAR DEL PLATA
Citación
Musmarra, Juan Ignacio; Bellini, Mauricio; Quantum thermodynamics in a static de Sitter space-time and initial state of the universe; Springer; European Physical Journal C: Particles and Fields; 79; 11; 11-2019; 899-905
Compartir
Altmétricas