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Growth of matter fluctuations in $f(R,T)$ Gravity
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abstract
In this work, I present for the first time the analysis concerning the growth of matter fluctuations in the framework of $f(R,T)$ modified gravity where I presume $f(R,T) = R + \lambda T$, where $R$ denote the Ricci scalar, $T$ the trace of the energy-momentum tensor and $\lambda$ a constant. I first solve the Friedman equations assuming a dust universe ($\omega =0$) for the Hubble parameter $H(z)$ and then employ it in the equation of matter density fluctuations $\delta(z)$ to solve for $\delta(z)$ and the growth rate $f(z)$. Next, I proceed to show the behavior of $f(z)$ and $\delta(z)$ with redshift for some values of $\lambda$ with observational constraints. Finally, following the prescription of \cite{growft41}, I present an analytical expression for the growth index $\gamma$ which is redshift dependent and the expression reduces to $3/5$ for $\lambda=0$, which is the growth index for a dust universe.
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Cited by 1 Pith paper
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Constraining f(R,T) Gravity From The Dark Energy Density Parameter $\Omega_{\Lambda}$
The paper derives a lower bound λ ≈ −1.9×10⁻⁸ for the f(R,T) = R + 2λT model, but the bound is the value of λ that cancels a spurious constant of 24 in the paper's own formula Ω_Λ = 24 + λ/(4πG).
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