English

Testing the RG-flow $M(3,10)+\phi_{1,7}\to M(3,8)$ with Hamiltonian Truncation

High Energy Physics - Theory 2025-04-23 v2 Statistical Mechanics High Energy Physics - Lattice

Abstract

Hamiltonian Truncation (HT) methods provide a powerful numerical approach for investigating strongly coupled QFTs. In this work, we develop HT techniques to analyse a specific Renormalization Group (RG) flow recently proposed in Refs. [1, 3]. These studies put forward Ginzburg-Landau descriptions for the conformal minimal models M(3,10)M(3,10) and M(3,8)M(3,8), as well as the RG flow connecting them. Specifically, the RG-flow is defined by deforming the M(3,10)M(3,10) with the relevant primary operator ϕ1,7\phi_{1,7} (whose indices denote its position in the Kac table), yielding M(3,10)+ϕ1,7M(3,10)+ \phi_{1,7}. From the perspective of HT, realising such an RG-flow presents significant challenges, as the ϕ1,7\phi_{1,7} deformation requires renormalizing the UV theory up to third order in the coupling constant of the deformation. In this study, we carry out the necessary calculations to formulate HT for this theory and numerically investigate the spectrum of M(3,10)+ϕ1,7M(3,10)+ \phi_{1,7} in the large coupling regime, finding strong evidence in favour of the proposed flow.

Keywords

Cite

@article{arxiv.2412.09295,
  title  = {Testing the RG-flow $M(3,10)+\phi_{1,7}\to M(3,8)$ with Hamiltonian Truncation},
  author = {Olivier Delouche and Joan Elias Miro and James Ingoldby},
  journal= {arXiv preprint arXiv:2412.09295},
  year   = {2025}
}

Comments

46 pages, 6 figures and 6 tables. Typos in some derivations corrected