Published August 1989 | Version v1
Journal article

Final-state interactions and relativistic effects in the quasielastic (e,e') reaction

  • 1. Physics Division, Los Alamos National Laboratory, Los Alamos, New Mexico 87545
  • 2. Department of Physics and Astronomy, University of Maryland, College Park, Maryland 20742 (USA)
  • 3. Continuous Electron Beam Accelerator Facility, Newport News, Virginia 23606

Description

The longitudinal and transverse response functions for the inclusive quasielastic (e,e') reaction are analyzed in detail. A microscopic theoretical framework for the many-body reaction provides a clear conceptual (nonrelativistic) basis for treating final-state interactions and goes far beyond simple plane-wave or Hermitean potential models. The many-body physics of inelastic final-state channels as described by optical and multiple scattering theories is properly included by incorporating a full complex optical potential. Explicit nonrelativistic and relativistic momentum-space calculations quantitatively demonstrate the importance of such a treatment of final-state interactions for both the transverse and longitudinal response. Nonrelativistic calculations are performed using final-state interactions based on phenomenology, local density models, and microscopic multiple scattering theory. Relativistic calculations span a similar range of models and employ Dirac bound-state wave functions. The theoretical extension to relativistic dynamics is of course not clear, but is done in obvious parallel to elastic proton scattering. Extensive calculations are performed for 40Ca at momentum transfers of 410, 550, and 700 MeV/c. A number of interesting physical effects are observed, including significant relativistic suppressions (especially for RL), large off-shell and virtual pair effects, enhancement of the tails of the response by the final-state interactions, and large qualitative and even shape distinctions between the predictions of the various models of the final-state interactions. None of the models is found to be able to simultaneously predict the data for both response functions. This strongly suggests that additional physical mechanisms are of qualitative importance in inclusive quasielastic electron scattering

Additional details

Publishing Information

Journal Title
Physical Review, C
Journal Volume
40
Journal Issue
2
Series
Phys. Rev., C.
Journal Page Range
790-812
ISSN
0556-2813
CODEN
PRVCA