Constraining Exponential f(Q) Gravity with Cosmic Chronometers and Supernovae: A Data-Driven Analysis

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Autori principali: Sultanaa, Sanjeeda, Chattopadhyay, Surajit
Natura: Preprint
Pubblicazione: 2025
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author Sultanaa, Sanjeeda
Chattopadhyay, Surajit
author_facet Sultanaa, Sanjeeda
Chattopadhyay, Surajit
contents The current paper reports an investigation of the cosmological implications of symmetric teleparallel gravity within a modified $f(Q)$ theory. We construct a specific exponential $f(Q)$ model as $f(Q) = Q + η_1 Q_0\left(1 - e^{-η_2 \sqrt{Q/Q_0}}\right)$, designed to smoothly deviate from General Relativity and accommodate both early-time inflation and late-time accelerated expansion. By employing Markov Chain Monte Carlo (MCMC) methods, we constrain the model parameters $η_1$, $η_2$, $H_0$, and $Ω_{m_0}$ using a combination of cosmic chronometers (CC), Pantheon, and Pantheon$^+$ Supernovae datasets. Our analysis demonstrates that the model consistently supports a late-time acceleration scenario and is in good agreement with current cosmological observations. We extensively analyze the dynamical behavior of the model using key cosmological diagnostics, including the deceleration parameter, equation of state, energy density parameters, Statefinder, and Om diagnostics. The reconstructed Hubble parameter $H(z)$ and distance modulus $μ(z)$ show strong consistency with $Λ$CDM and observational data, while subtle deviations at higher redshifts highlight the value of multi-probe observations. In addition, the examination of energy conditions shows that, in accordance with cosmic acceleration, the Strong Energy Condition (SEC) is broken at lower redshifts while the Dominant Energy Condition (DEC) and Null Energy Condition (NEC) are satisfied. Cosmic age estimates from the model are consistently in agreement with Planck constraints. Our results indicate the viability of exponential $f(Q)$ gravity. A comparative statistical analysis reveals that while $Λ$CDM remains statistically preferred based on AIC and BIC criteria, the exponential $f(Q)$ model yields comparable fits and remains a theoretically motivated and viable alternative for describing cosmic acceleration.
format Preprint
id arxiv_https___arxiv_org_abs_2511_06088
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Constraining Exponential f(Q) Gravity with Cosmic Chronometers and Supernovae: A Data-Driven Analysis
Sultanaa, Sanjeeda
Chattopadhyay, Surajit
General Relativity and Quantum Cosmology
The current paper reports an investigation of the cosmological implications of symmetric teleparallel gravity within a modified $f(Q)$ theory. We construct a specific exponential $f(Q)$ model as $f(Q) = Q + η_1 Q_0\left(1 - e^{-η_2 \sqrt{Q/Q_0}}\right)$, designed to smoothly deviate from General Relativity and accommodate both early-time inflation and late-time accelerated expansion. By employing Markov Chain Monte Carlo (MCMC) methods, we constrain the model parameters $η_1$, $η_2$, $H_0$, and $Ω_{m_0}$ using a combination of cosmic chronometers (CC), Pantheon, and Pantheon$^+$ Supernovae datasets. Our analysis demonstrates that the model consistently supports a late-time acceleration scenario and is in good agreement with current cosmological observations. We extensively analyze the dynamical behavior of the model using key cosmological diagnostics, including the deceleration parameter, equation of state, energy density parameters, Statefinder, and Om diagnostics. The reconstructed Hubble parameter $H(z)$ and distance modulus $μ(z)$ show strong consistency with $Λ$CDM and observational data, while subtle deviations at higher redshifts highlight the value of multi-probe observations. In addition, the examination of energy conditions shows that, in accordance with cosmic acceleration, the Strong Energy Condition (SEC) is broken at lower redshifts while the Dominant Energy Condition (DEC) and Null Energy Condition (NEC) are satisfied. Cosmic age estimates from the model are consistently in agreement with Planck constraints. Our results indicate the viability of exponential $f(Q)$ gravity. A comparative statistical analysis reveals that while $Λ$CDM remains statistically preferred based on AIC and BIC criteria, the exponential $f(Q)$ model yields comparable fits and remains a theoretically motivated and viable alternative for describing cosmic acceleration.
title Constraining Exponential f(Q) Gravity with Cosmic Chronometers and Supernovae: A Data-Driven Analysis
topic General Relativity and Quantum Cosmology
url https://arxiv.org/abs/2511.06088