Testing Some f(R,T) Gravity Models from Energy Conditions
- 1 Department of Natural Science, Federal University of Espirito Santo, Sao Mateus, Brazil
- 2 Department of Natural Science, Federal University of Espirito Santo, Sao Mateus, Brazil
- 3 Institute of Mathematics and Physical Sciences (IMSP), Porto-Novo, Benin
- 4 Institute of Mathematics and Physical Sciences (IMSP), Porto-Novo, Benin
Abstract
We consider f ( R,T ) theory of gravity, where R is the curvature scalar and T is the trace of the energy momentum tensor. Attention is attached to the special case, f ( R,T )= R +2 f ( T ) and two expressions are assumed for the function f ( T ),( a 1 T n +b 1 )/( a 2 T n +b 2 ) and a 3 In q ( b 3 T m ) , where a 1 , a 2 , b 1 , b 2 ,n , a 3 , b 3 , q and m are input parameters. We observe that by adjusting suitably these input parameters, energy conditions can be satisfied. Moreover, an analysis of the perturbations and stabilities of de Sitter solutions and power-law solutions is performed with the use of the two models. The results show that for some values of the input parameters, for which energy conditions are satisfied, de Sitter solutions and power-law solutions may be stables.
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