12,551 research outputs found

    Wormholes in R2R^2-gravity within the f(R,T)f(R,T) formalism

    Full text link
    We propose, as a novelty in the literature, the modelling of wormholes within the particular case of the f(R,T)f(R,T) gravity, namely f(R,T)=R+αR2+λTf(R,T)=R+\alpha R^{2}+\lambda T, with RR and TT being the Ricci scalar and trace of the energy-momentum tensor, respectively, while α\alpha and λ\lambda are constants. Although such a functional form application can be found in the literature, those concern to compact astrophysical objects, such that no wormhole analysis has been done so far. The quadratic geometric and linear material corrections of this theory make the matter content of the wormhole to remarkably be able to obey the energy conditions.Comment: Published versio

    Implications of lepton nonuniversality in the beauty sector

    Full text link
    The phenomenon of CP violation in the standard model (SM) framework and the decay dynamics have been established from the data obtained from the B factories and so far we have not seen anything new. Nevertheless, there have been instances of deviations in many measured observables in the flavor sector, as far as the data and predictions are concerned. Here we will mention some deviations obtained in measurements related to lepton universality, as seen from the data, and try to understand their implications. To accommodate the observed data we will consider a leptoquark model, which seems to be one interesting model beyond the SM.Comment: 6 pages, 4 figures, talk given at BEACH 2016, George Mason University, Fairfax, Virginia, USA, June 201

    f(R,T)=f(R)+λTf(R,T)=f(R)+\lambda T gravity models as alternatives to cosmic acceleration

    Full text link
    This article presents cosmological models that arise in a subclass of f(R,T)=f(R)+f(T)f(R,T)=f(R)+f(T) gravity models, with different f(R)f(R) functions and fixed TT-dependence. That is, the gravitational lagrangian is considered as f(R,T)=f(R)+λTf(R,T)=f(R)+\lambda T, with constant λ\lambda. Here RR and TT represent the Ricci scalar and trace of the stress-energy tensor, respectively. The modified gravitational field equations are obtained through the metric formalism for the Friedmann-Lema\^itre-Robertson-Walker metric with signature (+,,,)(+,-,-,-). We work with f(R)=R+αR2μ4Rf(R)=R+\alpha R^2-\frac{\mu^4}{R}, f(R)=R+kln(γR)f(R)=R+k\ln(\gamma R) and f(R)=R+me[nR]f(R)=R+me^{[-nR]}, with α,μ,k,γ,m\alpha, \mu, k, \gamma, m and nn all free parameters, which lead to three different cosmological models for our Universe. For the choice of λ=0\lambda=0, this reduces to widely discussed f(R)f(R) gravity models. This manuscript clearly describes the effects of adding the trace of the energy-momentum tensor in the f(R)f(R) lagrangian. The exact solution of the modified field equations are obtained under the hybrid expansion law. Also we present the Om diagnostic analysis for the discussed models.Comment: 11 pages, 20 figures, Accepted version in EPJ

    AdS_3, Black Holes and Higher Derivative Corrections

    Get PDF
    Using AdS/CFT correspondence and the Euclidean action formalism for black hole entropy Kraus and Larsen have argued that the entropy of a BTZ black hole in three dimensional supergravity with (0,4) supersymmetry does not receive any correction from higher derivative terms in the action. We argue that as a consequence of AdS/CFT correspondence the action of a three dimensional supergravity with (0,4) supersymmetry cannot receive any higher derivative correction except for those which can be removed by field redefinition. The non-renormalization of the entropy then follows as a consequence of this and the invariance of Wald's formula under a field redefinition.Comment: LaTeX file, 12 pages; v2: reference adde

    Wormholes in exponential f(R,T)f(R,T) gravity

    Full text link
    Alternative gravity is nowadays an extremely important tool to address some persistent observational issues, such as the dark sector of the universe. They can also be applied to stellar astrophysics, leading to outcomes one step ahead of those obtained through General Relativity. In the present article we test a novel f(R,T)f(R,T) gravity model within the physics and geometry of wormholes. The f(R,T)f(R,T) gravity is a reputed alternative gravity theory in which the Ricci scalar RR in the Einstein-Hilbert gravitational lagrangian is replaced by a general function of RR and TT, namely f(R,T)f(R,T), with TT representing the trace of the energy-momentum tensor. We propose, for the first time in the literature, an exponential form for the dependence of the theory on TT. We derive the field equations as well as the non-continuity equation and solve those to wormhole metric and energy-momentum tensor. The importance of applying alternative gravity to wormholes is that through these theories it might be possible to obtain wormhole solutions satisfying the energy conditions, departing from General Relativity well-known outcomes. In this article, we indeed show that it is possible to obtain wormhole solutions satisfying the energy conditions in the exponential f(R,T)f(R,T) gravity. Naturally, there is still a lot to do with this model, as cosmological, galactical and stellar astrophysics applications, and the reader is strongly encouraged to do so, but, anyhow, one can see the present outcomes as a good indicative for the theory.Comment: 6 pages, 3 figures, To appear in European Physical Journal
    corecore