Observational constraints and cosmological implications of scalar-tensor f(R, T) gravity

被引:9
|
作者
Bouali, Amine [1 ]
Chaudhary, Himanshu [2 ,3 ,4 ]
Harko, Tiberiu [5 ,6 ,7 ]
Lobo, Francisco S. N. [8 ,9 ]
Ouali, Taoufik [1 ]
Pinto, Miguel A. S. [8 ,9 ]
机构
[1] Mohammed I Univ, Lab Phys Matter & Radiat, BP 717, Oujda, Morocco
[2] Delhi Technol Univ, Dept Appl Math, Delhi 110042, India
[3] Pacif Inst Cosmol & Selfol PICS Sagara, Sambalpur 768224, Odisha, India
[4] Univ Delhi, Shyamlal Coll, Dept Math, Delhi 110032, India
[5] Babes Bolyai Univ, Dept Phys, Kogalniceanu St, Cluj Napoca 400084, Romania
[6] Natl Inst Phys & Nucl Engn IFIN HH, Dept Theoret Phys, Bucharest 077125, Romania
[7] Astron Observ, 19 Ciresilor St, Cluj Napoca 400487, Romania
[8] Univ Lisbon, Inst Astrofis & Ciencias Espaco, Fac Ciencias, Edificio C8, P-1749016 Lisbon, Portugal
[9] Univ Lisbon, Fac Ciencias, Dept Fis, Edificio C8, P-1749016 Lisbon, Portugal
关键词
cosmology: observations; dark energy; methods: statistical; methods: numerical; methods: data analysis; miscellaneous; LUMINOUS RED GALAXIES; DARK ENERGY; MODEL SELECTION; F R; MATTER; RECONSTRUCTION; STATEFINDER; WEYL; H(Z);
D O I
10.1093/mnras/stad2998
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Recently, the scalar-tensor representation of f(R, T) gravity was used to explore gravitationally induced particle production/annihilation. Using the framework of irreversible thermodynamics of open systems in the presence of matter creation/annihilation, the physical and cosmological consequences of this setup were investigated in detail. In this paper, we test observationally the scalar-tensor representation of f(R, T) gravity in the context of the aforementioned framework, using the Hubble and Pantheon + measurements. The best fit parameters are obtained by solving numerically the modified Friedmann equations of two distinct cosmological models in scalar-tensor f(R, T) gravity, corresponding to two different choices of the potential, and by performing a Markov Chain Monte Carlo analysis. The best parameters are used to compute the cosmographic parameters, that is, the deceleration, the jerk, and the snap parameters. Using the output resulting from the Markov Chain Monte Carlo analysis, the cosmological evolution of the creation pressure and of the matter creation rates are presented for both models. To figure out the statistical significance of the studied scalar-tensor f(R, T) gravity, the Bayesian and the corrected Akaike information criteria are used. The latter indicates that the first considered model in scalar-tensor f(R, T) gravity is statistically better than Lambda CDM, that is, it is more favoured by observations. Besides, a continuous particle creation process is present in Model 1. Alternatively, for large redshifts, in Model 2 the particle creation rate may become negative, thus indicating the presence of particle annihilation processes. However, both models lead to an accelerating expansion of the universe at late times, with a deceleration parameter equivalent to that of the Lambda CDM model.
引用
收藏
页码:4192 / 4208
页数:17
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