Chemical potential and the nature of dark energy: The case of a phantom field


Autoria(s): LIMA, J. A. S.; PEREIRA, S. H.
Contribuinte(s)

UNIVERSIDADE DE SÃO PAULO

Data(s)

18/04/2012

18/04/2012

2008

Resumo

The influence of a possible nonzero chemical potential mu on the nature of dark energy is investigated by assuming that the dark energy is a relativistic perfect simple fluid obeying the equation of state, p=omega rho (omega < 0, constant). The entropy condition, S >= 0, implies that the possible values of omega are heavily dependent on the magnitude, as well as on the sign of the chemical potential. For mu > 0, the omega parameter must be greater than -1 (vacuum is forbidden) while for mu < 0 not only the vacuum but even a phantomlike behavior (omega <-1) is allowed. In any case, the ratio between the chemical potential and temperature remains constant, that is, mu/T=mu(0)/T(0). Assuming that the dark energy constituents have either a bosonic or fermionic nature, the general form of the spectrum is also proposed. For bosons mu is always negative and the extended Wien's law allows only a dark component with omega <-1/2, which includes vacuum and the phantomlike cases. The same happens in the fermionic branch for mu < 0. However, fermionic particles with mu > 0 are permitted only if -1 <omega <-1/2. The thermodynamics and statistical arguments constrain the equation-of-state parameter to be omega <-1/2, a result surprisingly close to the maximal value required to accelerate a Friedmann-Robertson-Walker-type universe dominated by matter and dark energy (omega less than or similar to-10/21).

CNPq[150920/2007-5]

FAPESP[04/13668-0]

Identificador

PHYSICAL REVIEW D, v.78, n.8, 2008

1550-7998

http://producao.usp.br/handle/BDPI/15595

10.1103/PhysRevD.78.083504

http://dx.doi.org/10.1103/PhysRevD.78.083504

Idioma(s)

eng

Publicador

AMER PHYSICAL SOC

Relação

Physical Review D

Direitos

restrictedAccess

Copyright AMER PHYSICAL SOC

Palavras-Chave #EQUATION-OF-STATE #DEPENDENT COSMOLOGICAL TERM #DECAYING VACUUM ENERGY #GENERALIZED 2ND LAW #SUPERNOVA DATA #THERMODYNAMIC PROPERTIES #DEFLATIONARY COSMOLOGY #THEORETICIANS ANALYSIS #ACCELERATING UNIVERSE #QUANTUM VACUUM #Astronomy & Astrophysics #Physics, Particles & Fields
Tipo

article

original article

publishedVersion