We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elements to constrain f(T) gravity. The three most studied viable f(T) models, namely the power law, the exponential and the square-root exponential are considered, and the BBN bounds are adopted in order to extract constraints on their free parameters. For the power-law model, we find that the constraints are in agreement with those obtained using late-time cosmological data. For the exponential and the square-root exponential models, we show that for reliable regions of parameters space they always satisfy the BBN bounds. We conclude that viable f(T) models can successfully satisfy the BBN constraints
We revisit the big bang nucleosynthesis (BBN) limits on primordial magnetic fields and/or turbulent ...
In this work, we explore the possibility of using artificial neural networks to impose constraints o...
We establish new constraints on $f(T)$ gravity models by using cosmological data. In particular, we ...
We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elemen...
We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elemen...
We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elemen...
f(Q,T) gravity is a novel extension of the symmetric teleparallel gravity where the Lagrangian L is ...
We investigate two new observational perspectives in the context of torsional gravitational modifica...
Using a new recently compiled milliarcsecond compact radio data set of 120 intermediate-luminosity q...
Using big bang nucleosynthesis and present, high-precision measurements of light element abundances,...
In the last dozen years, a wide and variegated mass of observational data revealed that the universe...
AbstractA class of modified gravity, known as f(R)-gravity, has presently been applied to Cosmology ...
Recently, Active Galactic Nuclei (AGNs) have been proposed as standardizable candles, thanks to an o...
Big Bang Nucleosynthesis (BBN) is very sensitive to the cosmological expansion rate. If the gravitat...
We derive a general master equation relating the gravitational-wave observables r and Omega_gw(f). H...
We revisit the big bang nucleosynthesis (BBN) limits on primordial magnetic fields and/or turbulent ...
In this work, we explore the possibility of using artificial neural networks to impose constraints o...
We establish new constraints on $f(T)$ gravity models by using cosmological data. In particular, we ...
We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elemen...
We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elemen...
We use Big Bang Nucleosynthesis (BBN) observational data on the primordial abundance of light elemen...
f(Q,T) gravity is a novel extension of the symmetric teleparallel gravity where the Lagrangian L is ...
We investigate two new observational perspectives in the context of torsional gravitational modifica...
Using a new recently compiled milliarcsecond compact radio data set of 120 intermediate-luminosity q...
Using big bang nucleosynthesis and present, high-precision measurements of light element abundances,...
In the last dozen years, a wide and variegated mass of observational data revealed that the universe...
AbstractA class of modified gravity, known as f(R)-gravity, has presently been applied to Cosmology ...
Recently, Active Galactic Nuclei (AGNs) have been proposed as standardizable candles, thanks to an o...
Big Bang Nucleosynthesis (BBN) is very sensitive to the cosmological expansion rate. If the gravitat...
We derive a general master equation relating the gravitational-wave observables r and Omega_gw(f). H...
We revisit the big bang nucleosynthesis (BBN) limits on primordial magnetic fields and/or turbulent ...
In this work, we explore the possibility of using artificial neural networks to impose constraints o...
We establish new constraints on $f(T)$ gravity models by using cosmological data. In particular, we ...