Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit

Introduction Range and diffusion of positron-emitting radiopharmaceuticals are important parameters for image resolution in positron emission tomography (PET). In this study, GEANT4 toolkit was applied to study positron diffusion in soft tissues with and without a magnetic field for six commonly use...

Full description

Bibliographic Details
Main Authors: Mohsen Mashayekhi, Ali Asghar Mowlavi
Format: Article
Language:English
Published: Mashhad University of Medical Sciences 2015-05-01
Series:Iranian Journal of Medical Physics
Subjects:
Online Access:http://ijmp.mums.ac.ir/pdf_4323_3a96356fe8f8c7a5342fe834ab9e5579.html
id doaj-603abea8f3844a36ab1d81bc3799629a
record_format Article
spelling doaj-603abea8f3844a36ab1d81bc3799629a2020-11-25T01:28:37ZengMashhad University of Medical SciencesIranian Journal of Medical Physics2252-03092345-36722015-05-011217134323Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 ToolkitMohsen Mashayekhi0Ali Asghar Mowlavi1Physics Department, Hakim Sabzevari University, Sabzevar, Iran.Physics Department, Hakim Sabzevari University, Sabzevar, Iran. International Centre for Theoretical Physics (ICTP), Associate and Federation Schemes, Medical Physics Field, Trieste, Italy.Introduction Range and diffusion of positron-emitting radiopharmaceuticals are important parameters for image resolution in positron emission tomography (PET). In this study, GEANT4 toolkit was applied to study positron diffusion in soft tissues with and without a magnetic field for six commonly used isotopes in PET imaging including 11C, 13N, 15O, 18F, 68Ga, and 82Rb. Materials and Methods GEANT4 toolkit was used to simulate the transport and interactions of positrons. Calculations were performed for the soft tissue phantom (8 mm ×8 mm × 8 mm). Positrons were emitted isotropically from the center of the phantom. By the application of a magnetic field perpendicular to the path of positrons, lateral scattering of positrons could be prevented due to Lorentz force. When the positron energy was below the cut-off threshold (0.001 MeV), the simulation was terminated. Results The findings showed that the presence of a magnetic field increased the rate of positron annihilation. At magnetic field strengths of 3, 7, and 10 Tesla, 18F with the lowest decay energy showed improvements in the ratio of full width at half maximum (FWHM) resolution to the peak of curve by 3.64%, 3.89%, and 5.96%, respectively. In addition, at magnetic field strengths of 3, 7 and 10 Tesla, 82Rb with the highest decay energy showed improvements in resolution by 33%, 85%, and 99%, respectively. Conclusion Application of a magnetic field perpendicular to the positron diffusion plane prevented the scattering of positrons, and consequently, improved the intrinsic spatial resolution of PET imaging, caused by positron range effects.http://ijmp.mums.ac.ir/pdf_4323_3a96356fe8f8c7a5342fe834ab9e5579.htmlPositronPET ImageMagnetic FieldGEANT4 Toolkit
collection DOAJ
language English
format Article
sources DOAJ
author Mohsen Mashayekhi
Ali Asghar Mowlavi
spellingShingle Mohsen Mashayekhi
Ali Asghar Mowlavi
Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit
Iranian Journal of Medical Physics
Positron
PET Image
Magnetic Field
GEANT4 Toolkit
author_facet Mohsen Mashayekhi
Ali Asghar Mowlavi
author_sort Mohsen Mashayekhi
title Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit
title_short Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit
title_full Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit
title_fullStr Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit
title_full_unstemmed Calculation of Positron Distribution in the Presence of a Uniform Magnetic Field for the Improvement of Positron Emission Tomography (PET) Imaging Using GEANT4 Toolkit
title_sort calculation of positron distribution in the presence of a uniform magnetic field for the improvement of positron emission tomography (pet) imaging using geant4 toolkit
publisher Mashhad University of Medical Sciences
series Iranian Journal of Medical Physics
issn 2252-0309
2345-3672
publishDate 2015-05-01
description Introduction Range and diffusion of positron-emitting radiopharmaceuticals are important parameters for image resolution in positron emission tomography (PET). In this study, GEANT4 toolkit was applied to study positron diffusion in soft tissues with and without a magnetic field for six commonly used isotopes in PET imaging including 11C, 13N, 15O, 18F, 68Ga, and 82Rb. Materials and Methods GEANT4 toolkit was used to simulate the transport and interactions of positrons. Calculations were performed for the soft tissue phantom (8 mm ×8 mm × 8 mm). Positrons were emitted isotropically from the center of the phantom. By the application of a magnetic field perpendicular to the path of positrons, lateral scattering of positrons could be prevented due to Lorentz force. When the positron energy was below the cut-off threshold (0.001 MeV), the simulation was terminated. Results The findings showed that the presence of a magnetic field increased the rate of positron annihilation. At magnetic field strengths of 3, 7, and 10 Tesla, 18F with the lowest decay energy showed improvements in the ratio of full width at half maximum (FWHM) resolution to the peak of curve by 3.64%, 3.89%, and 5.96%, respectively. In addition, at magnetic field strengths of 3, 7 and 10 Tesla, 82Rb with the highest decay energy showed improvements in resolution by 33%, 85%, and 99%, respectively. Conclusion Application of a magnetic field perpendicular to the positron diffusion plane prevented the scattering of positrons, and consequently, improved the intrinsic spatial resolution of PET imaging, caused by positron range effects.
topic Positron
PET Image
Magnetic Field
GEANT4 Toolkit
url http://ijmp.mums.ac.ir/pdf_4323_3a96356fe8f8c7a5342fe834ab9e5579.html
work_keys_str_mv AT mohsenmashayekhi calculationofpositrondistributioninthepresenceofauniformmagneticfieldfortheimprovementofpositronemissiontomographypetimagingusinggeant4toolkit
AT aliasgharmowlavi calculationofpositrondistributioninthepresenceofauniformmagneticfieldfortheimprovementofpositronemissiontomographypetimagingusinggeant4toolkit
_version_ 1725100514507489280