DocumentCode :
1426032
Title :
4.5 tesla magnetic field reduces range of high-energy positrons-potential implications for positron emission tomography
Author :
Wirrwar, Andreas ; Vosberg, Henning ; Herzog, Hans ; Halling, Horst ; Weber, Simone ; Müller-Gärtner, Hans-Wilhelm
Author_Institution :
Nuklearmedizinische Klinik Heinrich-Heine Univ., Dusseldorf, Germany
Volume :
44
Issue :
2
fYear :
1997
fDate :
4/1/1997 12:00:00 AM
Firstpage :
184
Lastpage :
189
Abstract :
We have theoretically and experimentally investigated the extent to which homogeneous magnetic fields up to 7 Tesla reduce the spatial distance positrons travel before annihilation (positron range). Computer simulations of a noncoincident detector design using a Monte Carlo algorithm calculated the positron range as a function of positron energy and magnetic field strength. The simulation predicted improvements in resolution, defined as full-width at half-maximum (FWBM) of the line-spread function (LSP) for a magnetic field strength up to 7 Tesla: negligible for F-18, from 3.35 mm to 2.73 mm for Ga-68 and from 3.66 mm to 2.68 mm for Rb-82. Also a substantial noise suppression was observed, described by the full-width at tenth-maximum (FWTM) for higher positron energies. The experimental approach confirmed an improvement in resolution for Ga-68 from 3.54 mm at 0 Tesla to 2.99 mm FWHM at 4.5 Tesla and practically no improvement for F-18 (2.97 mm at 0 Tesla and 2.95 mm at 4.5 Tesla). It is concluded that the simulation model is appropriate and that a homogeneous static magnetic field of 4.5 Tesla reduces the range of high-energy positrons to an extent that may improve spatial resolution in positron emission tomography
Keywords :
Monte Carlo methods; energy loss of particles; fluorine; gallium; magnetic field effects; positron emission tomography; radioisotopes; rubidium; 2.68 to 3.66 mm; 4.5 T; 4.5 tesla magnetic field; 18F; 68Ga; 82Rb; F; Ga; Monte Carlo algorithm; Rb; computer simulations; high-energy positrons; homogeneous magnetic fields; line-spread function; noncoincident detector design; positron emission tomography; positron range; spatial distance; spatial resolution; Algorithm design and analysis; Computational modeling; Computer simulation; Detectors; Energy resolution; Magnetic fields; Monte Carlo methods; Positrons; Predictive models; Spatial resolution;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/23.568801
Filename :
568801
Link To Document :
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