Affiliations 

  • 1 College of Science, Technology and Engineering, James Cook University, Townsville QLD 4810, Australia
  • 2 1] School of Chemical and Physical Sciences, Flinders University, Adelaide, SA 5001, Australia [2] Institute of Mathematical Sciences, University of Malaya, 5063 Kuala Lumpur, Malaysia
  • 3 1] Research School of Physics and Engineering, Australian National University, Canberra, ACT 0200, Australia [2] Institute of Mathematical Sciences, University of Malaya, 5063 Kuala Lumpur, Malaysia
  • 4 Instituto de Física Fundamental, CSIC, Madrid E-28006, Spain
  • 5 Institute of Physics, University of Belgrade, Zemun, Belgrade 11080, Serbia
Sci Rep, 2015 Aug 06;5:12674.
PMID: 26246002 DOI: 10.1038/srep12674

Abstract

The kinetic theory of non-relativistic positrons in an idealized positron emission tomography PET environment is developed by solving the Boltzmann equation, allowing for coherent and incoherent elastic, inelastic, ionizing and annihilating collisions through positronium formation. An analytic expression is obtained for the positronium formation rate, as a function of distance from a spherical source, in terms of the solutions of the general kinetic eigenvalue problem. Numerical estimates of the positron range - a fundamental limitation on the accuracy of PET, are given for positrons in a model of liquid water, a surrogate for human tissue. Comparisons are made with the 'gas-phase' assumption used in current models in which coherent scattering is suppressed. Our results show that this assumption leads to an error of the order of a factor of approximately 2, emphasizing the need to accurately account for the structure of the medium in PET simulations.

* Title and MeSH Headings from MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.