PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 31, 20260 citationsOpen Access

Emergent Early Dark Energy from Renormalization Group Fluctuations and Walking Dynamics (v1)

View Full Paper
SRSudhakar Rajnikant

Key Points

  • The study aims to develop a mechanism explaining early dark energy through renormalization group dynamics and fluctuations.
  • Proposed a first-principles mechanism for early dark energy generation.
  • Defined an effective action that incorporates coarse-graining leading to stochastic RG flow.
  • Analyzed the behavior of the scalar field with a time-dependent mass based on g*(z).
  • Computed cosmological evolution and early dark energy fractions through RG dynamics.
  • Predicted early dark energy fraction ranges from 1% to 3%, aligned with cosmic microwave background constraints.
  • Inferred a Hubble constant between 69 to 71 km/s/Mpc, halving Hubble tension.
  • Identified a distinctive stochastic component in the expansion history affecting CMB acoustic peaks.

Abstract

We propose a first-principles mechanism for early dark energy (EDE) arising from renormalization group (RG) dynamics and entropy-driven fluctuations in an emergent framework of cosmology. Starting from a stationary fundamental action, we show that coarse-graining induces a stochastic RG flow for a reduced dynamical variable, leading to fluctuation-driven corrections to the beta function. These corrections generate an effective walking regime, characterized by a near-vanishing RG drift over a finite range of scales. We construct an effective action description in which the emergent degree of freedom behaves as a scalar field with a time-dependent mass determined by the effective number of degrees of freedom g* (z). In the early universe, large g* induces a dynamical flattening of the effective potential, enhancing fluctuations and producing a transient EDE component at the percent level. As g* decreases, the system exits the walking regime and asymptotically approaches a Lambda-like behavior. We compute the resulting cosmological evolution and show that the model generates an early dark energy fraction fEDE approximately in the range 1% to 3%, consistent with current constraints from cosmic microwave background data. This leads to a shift in the inferred Hubble constant H0 approximately in the range 69 to 71 kilometers per second per megaparsec, reducing the Hubble tension by approximately a factor of two without spoiling agreement with existing observations. A key prediction of the model is a stochastic component in the expansion history, leading to a small but characteristic smoothing of acoustic peaks in the CMB power spectrum at the level of about 10 to the minus 3. This signature distinguishes the scenario from standard EDE models and is potentially detectable with upcoming experiments. Our results demonstrate that early dark energy can emerge naturally from RG fluctuations and walking dynamics, providing a theoretically grounded and observationally viable contribution to the partial alleviation of the Hubble tension.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Sudhakar Rajnikant (2026) studied this question.

synapsesocial.com/papers/69cb64b0e6a8c024954b8ccchttps://doi.org/10.5281/zenodo.19312156
Ask AI
Helpful
Bookmark
Share
View Full Paper