English

Update on pion weak decay constants in nuclear matter

High Energy Physics - Phenomenology 2009-11-10 v1 Nuclear Theory

Abstract

The QCD sum rule calculation of the in-medium pion decay constants using pseudoscalar-axial vector correlation function, id4xeipx<ρT[dˉ(x)iγ5u(x)uˉ(0)γμγ5d(0)]ρ>i \int d^4x e^{ip\cdot x} < \rho| T[{\bar d}(x) i \gamma_5 u (x) {\bar u}(0) \gamma_\mu \gamma_5 d (0)] | \rho> is revisited. In particular, we argue that the dimension 5 condensate, <qˉ(iD0)2q>N+18<qˉgsσGq>N<{\bar q} (i D_0)^2 q >_N + {1\over 8} < {\bar q} g_s \sigma \cdot {\cal G} q >_N, which is crucial for splitting the time (ftf_t) and space (fsf_s) components of the decay constant, is not necessarily restricted to be positive. Its positive value is found to yield a tachyonic pion mass. Using the in-medium pion mass as an input, we fix the dimension 5 condensate to be around 0.025GeV20.019-0.025 {\rm GeV}^2 \sim -0.019 GeV2^2. The role of the NN and Δ\Delta intermediate states in the correlation function is also investigated. The NN intermediate state is found not to contribute to the sum rules. For the Δ\Delta intermediate state, we either treat it as a part of the continuum or propose a way to subtract explicitly from the sum rules. With (and without) explicit Δ\Delta subtraction while allowing the in-medium pion mass to vary within 139 MeV mπ \le m_\pi^* \le 159 MeV, we obtain fs/fπ=0.370.78f_s/f_\pi = 0.37 \sim 0.78 and ft/fπ=0.630.79f_t / f_\pi = 0.63 \sim 0.79.

Keywords

Cite

@article{arxiv.hep-ph/0301227,
  title  = {Update on pion weak decay constants in nuclear matter},
  author = {Hungchong Kim and Makoto Oka},
  journal= {arXiv preprint arXiv:hep-ph/0301227},
  year   = {2009}
}

Comments

18 pages including 5 postscript figures

R2 v1 2026-07-22T13:46:15.345Z