4.4 Article

A lattice study of ππ scattering at large Nc

Journal

JOURNAL OF HIGH ENERGY PHYSICS
Volume -, Issue 6, Pages -

Publisher

SPRINGER
DOI: 10.1007/JHEP06(2022)049

Keywords

Hadronic Spectroscopy; Structure and Interactions; Lattice QCD; 1/N Expansion; Chiral Lagrangian

Funding

  1. Generalitat Valenciana [PROMETEO/2019/083, CIDEGENT/2019/040]
  2. European project H2020-MSCA-ITN-2019 [860881-HIDDeN]
  3. AEI [PID2020-113644GB-I00/AEI]
  4. MU [FPU19/04326]
  5. EU Horizon 2020 research and innovation program under the Marie Sklodowska-Curie grant [713673]
  6. La Caixa Foundation [100010434, LCF/BQ/IN17/11620044]
  7. U.S. Department of Energy, Office of Science, Office of Nuclear Physics [DE-SC0011090, DE-SC0021006]

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This study presents the first lattice investigation of pion-pion scattering with varying number of colors. The researchers used lattice simulations with four degenerate quark flavors to focus on two scattering channels. They extracted the scattering amplitude and matched the results to Chiral Perturbation Theory, providing valuable insights into the pion-pion scattering process.
We present the first lattice study of pion-pion scattering with varying number of colors, N-c. We use lattice simulations with four degenerate quark flavors, N-f = 4, and N-c= 3 - 6. We focus on two scattering channels that do not involve vacuum diagrams. These correspond to two irreducible representations of the SU(4) flavor group: the fully symmetric one, SS, and the fully antisymmetric one, AA. The former is a repulsive channel equivalent to the isospin-2 channel of SU(2). By contrast, the latter is attractive and only exists for N-f >= 4. A representative state is (vertical bar D-s(+) pi(+)> - vertical bar D+ K+ >) /root 2. Using Lfischer's formalism, we extract the near-threshold scattering amplitude and we match our results to Chiral Perturbation Theory (ChPT) at large N-c. For this, we compute the analytical U(N-f) ChPT prediction for two-pion scattering, and use the lattice results to constrain the N-c scaling of the relevant low-energy couplings.

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