Published January 1, 2010 | Version v1
Journal article

Couplings in coupled channels versus wave functions: Application to the X(3872) resonance

  • 1. Instituto de Fisica corpuscular (IFIC), Centro Mixto Universidad de Valencia-CSIC, Institutos de Investigacion de Paterna, Aptdo. 22085, 46071, Valencia (Spain)
  • 2. Departamento de Fisica Teorica and IFIC, Centro Mixto Universidad de Valencia-CSIC, Institutos de Investigacion de Paterna, Aptdo. 22085, 46071, Valencia (Spain)
  • 3. Departamento de Fisica Atomica, Molecular y Nuclear, Universidad de Granada, E-18071 Granada (Spain)

Description

We perform an analytical study of the scattering matrix and bound states in problems with many physical coupled channels. We establish the relationship of the couplings of the states to the different channels, obtained from the residues of the scattering matrix at the poles, with the wave functions for the different channels. The couplings basically reflect the value of the wave functions around the origin in coordinate space. In the concrete case of the X(3872) resonance, understood as a bound state of D0D*0 and D+D*- (and c.c. From now on, when we refer to D0D*0 , D+D*-, or DD* we are actually referring to the combination of these states with their complex conjugate in order to form a state with positive C-parity), with the D0D*0 loosely bound, we find that the couplings to the two channels are essentially equal leading to a state of good isospin I=0 character. This is in spite of having a probability for finding the D0D*0 state much larger than for D+D*- since the loosely bound channel extends further in space. The analytical results, obtained with exact solutions of the Schroedinger equation for the wave functions, can be useful in general to interpret results found numerically in the study of problems with unitary coupled channels methods.

Additional details

Publishing Information

Journal Title
Physical Review. D, Particles Fields
Journal Volume
81
Journal Issue
1
Journal Page Range
p. 014029-014029.14
ISSN
0556-2821
CODEN
PRVDAQ

Optional Information

Notes
(c) 2010 The American Physical Society