Update on pion weak decay constants in nuclear matter
arXiv:hep-ph/0301227 · doi:10.1016/S0375-9474(03)01004-2
Abstract
The QCD sum rule calculation of the in-medium pion decay constants using pseudoscalar-axial vector correlation function, is revisited. In particular, we argue that the dimension 5 condensate, , which is crucial for splitting the time () and space () 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 GeV. The role of the and intermediate states in the correlation function is also investigated. The intermediate state is found not to contribute to the sum rules. For the 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 subtraction while allowing the in-medium pion mass to vary within 139 MeV 159 MeV, we obtain and .
18 pages including 5 postscript figures
References in corpus (6)
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Cited by in corpus (8)
- Energy-momentum tensor form factors of the nucleon in nuclear matter
- Pion structure in the nuclear medium
- The Pion Velocity in Dense Skyrmion Matter
- QCD sum rules for the anti-charmed pentaquark
- Pion weak decay constant at finite density from the instanton vacuum
- The Calculation of and at Finite Chemical Potential
- Modification of hyperon masses in nuclear matter
- Finite-energy sum rules at finite chemical potential and zero temperature