Resonances and Quantum Scattering for the Morse Potential as a Barrier
arXiv:nucl-th/0111027 · doi:10.1119/1.1485714
Abstract
Quantum scattering in the presence of a potential valley followed by a barrier is examined for the case of a Morse potential, for which exact analytic solutions to the Schr\UNICODE{0xf6}dinger equation are known in terms of confluent hypergeometric functions. For our application the potential is characterized by three parameters: the height of the barrier, the distance of the barrier from the origin of the radial variable and a diffuseness parameter. The wave function, defined in the interval is required to vanish at and hence represents a radial partial wave for zero angular momentum. The vanishing at requires a special combination of hypergeometric functions, and can lead to resonances for incident energies which occur below the top of the barrier. Numerical values for the analytical phase shifts are presented in and outside the resonant regions, and the corresponding properties of the scattering S-matrix are examined in the complex momentum plane, mainly for pedagogical reasons. The validity of the Breit-Wigner approximation to the resonant phase shifts is tested, and the motion of a ''resonant'' wave packet slowly leaking out of the valley region is also displayed.
23 pages, 11 figures. One PDF file
Cited by in corpus (12)
- Semi-spectral Chebyshev method in Quantum Mechanics
- Quasinormal modes for the scattering on a naked Reissner-Nordstrom singularity
- Flow of S-matrix poles for elementary quantum potentials
- Resonant states and pseudospin symmetry in the Dirac Morse potential
- The rotating Morse potential model for diatomic molecules in the J-matrix representation: II. The S-matrix approach
- Quantum work distribution for a driven diatomic molecule
- Scattering states of a particle, with position-dependent mass, in a double heterojunction
- A Novel Method for the Solution of the Schroedinger Eq. in the Presence of Exchange Terms
- Prediction of deviations from the Rutherford formula for low-energy Coulomb scattering of wavepackets
- Quantum scattering by Wronskians
- The Method of Comparison Equations for Schwarzschild Black Holes
- Noncommutative sedeons and their application in field theory