6 research outputs found
Near-conformal dynamics in a chirally broken system
Composite Higgs models must exhibit very different dynamics from quantum chromodynamics (QCD) regardless whether they describe the Higgs boson as a dilaton-like state or a pseudo-Nambu-Goldstone boson. Large separation of scales and large anomalous dimensions are frequently desired by phenomenological models. Mass-split systems are well-suited for composite Higgs models because they are governed by a conformal fixed point in the ultraviolet but are chirally broken in the infrared. In this work we use lattice field theory calculations with domain wall fermions to investigate a system with four light and six heavy flavors. We demonstrate how a nearby conformal fixed point affects the properties of the four light flavors that exhibit chiral symmetry breaking in the infrared. Specifically we describe hyperscaling of dimensionful physical quantities and determine the corresponding anomalous mass dimension. We obtain suggesting that lies inside the conformal window. Comparing the low energy spectrum to predictions of dilaton chiral perturbation theory, we observe excellent agreement which supports the expectation that the 4+6 mass-split system exhibits near-conformal dynamics with a relatively light isosinglet scalar
Near-conformal dynamics in a chirally broken system
Composite Higgs models must exhibit very different dynamics from quantum chromodynamics (QCD) regardless whether they describe the Higgs boson as a dilatonlike state or a pseudo-Nambu-Goldstone boson. Large separation of scales and large anomalous dimensions are frequently desired by phenom- enological models. Mass-split systems are well-suited for composite Higgs models because they are governed by a conformal fixed point in the ultraviolet but are chirally broken in the infrared. In this work we use lattice field theory calculations with domain wall fermions to investigate a system with four light and six heavy flavors. We demonstrate how a nearby conformal fixed point affects the properties of the four light flavors that exhibit chiral symmetry breaking in the infrared. Specifically we describe hyperscaling of dimensionful physical quantities and determine the corresponding anomalous mass dimension. We obtain ym = 1 + γ* = 1.47(5) suggesting that Nf = 10 lies inside the conformal window. Comparing the low energy spectrum to predictions of dilaton chiral perturbation theory, we observe excellent agreement which supports the expectation that the 4+6 mass-split system exhibits near-conformal dynamics with a relatively light 0þþ isosinglet scalar
Stealth dark matter spectrum using LapH and Irreps
We present non-perturbative lattice calculations of the low-lying meson and
baryon spectrum of the SU(4) gauge theory with fundamental fermion
constituents. This theory is one instance of stealth dark matter, a class of
strongly coupled theories, where the lowest mass stable baryon is the dark
matter candidate. This work constitutes the first milestone in the program to
study stealth dark matter self-interactions. Here, we focus on reducing excited
state contamination in the single baryon channel by applying the Laplacian
Heaviside method, as well as projecting our baryon operators onto the
irreducible representations of the octahedral group. We compare our resulting
spectrum to previous work involving Gaussian smeared non-projected operators
and find good agreement with reduced statistical uncertainties. We also present
the spectrum of the low-lying odd-parity baryons for the first time