Dry Distillation of Radioiodine from TeO2 Targets

As medical cyclotrons are becoming more abundant, 123I and 124I are getting more attention as alternatives to 131I for diagnostics of thyroid disease. Both 123I and 124I provide better diagnostics, deliver less dose to patients and both reduce the risk of thyroid stunning, facilitating subsequent th...

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Main Authors: Jacek Koziorowski, Jesper Fonslet
Format: Article
Language:English
Published: MDPI AG 2013-10-01
Series:Applied Sciences
Subjects:
Online Access:http://www.mdpi.com/2076-3417/3/4/675
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spelling doaj-097b57f41d38491fb845be784143ca3d2020-11-24T21:05:36ZengMDPI AGApplied Sciences2076-34172013-10-013467568310.3390/app3040675Dry Distillation of Radioiodine from TeO2 TargetsJacek KoziorowskiJesper FonsletAs medical cyclotrons are becoming more abundant, 123I and 124I are getting more attention as alternatives to 131I for diagnostics of thyroid disease. Both 123I and 124I provide better diagnostics, deliver less dose to patients and both reduce the risk of thyroid stunning, facilitating subsequent therapy. Dry distillation of radioiodine from tellurium dioxide targets has become the standard approach to producing these radioiodines. Setting up such a production of radioiodine is associated with a lengthy optimization of the process and for this purpose natural tellurium is often used for economical reasons. In this paper, the distillation parameters are scrutinized to ensure optimal distillation temperature, in order to minimize time spent and prevent loss of expensive target material. It is further demonstrated how the individual iodine isotopes, produced from proton bombardment of natTe, will diffuse out of the target in a time dependent ratio. We believe the effect is due to the isotopes having their maximum cross section at different energies. The individual isotopes produced will thus have their highest concentration at different depths in the target. This results in individual mean diffusion lengths and diffusion times for the different isotopes.http://www.mdpi.com/2076-3417/3/4/675cyclotronradioiodineproductiondistillationiodine-124tellurium dioxide
collection DOAJ
language English
format Article
sources DOAJ
author Jacek Koziorowski
Jesper Fonslet
spellingShingle Jacek Koziorowski
Jesper Fonslet
Dry Distillation of Radioiodine from TeO2 Targets
Applied Sciences
cyclotron
radioiodine
production
distillation
iodine-124
tellurium dioxide
author_facet Jacek Koziorowski
Jesper Fonslet
author_sort Jacek Koziorowski
title Dry Distillation of Radioiodine from TeO2 Targets
title_short Dry Distillation of Radioiodine from TeO2 Targets
title_full Dry Distillation of Radioiodine from TeO2 Targets
title_fullStr Dry Distillation of Radioiodine from TeO2 Targets
title_full_unstemmed Dry Distillation of Radioiodine from TeO2 Targets
title_sort dry distillation of radioiodine from teo2 targets
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2013-10-01
description As medical cyclotrons are becoming more abundant, 123I and 124I are getting more attention as alternatives to 131I for diagnostics of thyroid disease. Both 123I and 124I provide better diagnostics, deliver less dose to patients and both reduce the risk of thyroid stunning, facilitating subsequent therapy. Dry distillation of radioiodine from tellurium dioxide targets has become the standard approach to producing these radioiodines. Setting up such a production of radioiodine is associated with a lengthy optimization of the process and for this purpose natural tellurium is often used for economical reasons. In this paper, the distillation parameters are scrutinized to ensure optimal distillation temperature, in order to minimize time spent and prevent loss of expensive target material. It is further demonstrated how the individual iodine isotopes, produced from proton bombardment of natTe, will diffuse out of the target in a time dependent ratio. We believe the effect is due to the isotopes having their maximum cross section at different energies. The individual isotopes produced will thus have their highest concentration at different depths in the target. This results in individual mean diffusion lengths and diffusion times for the different isotopes.
topic cyclotron
radioiodine
production
distillation
iodine-124
tellurium dioxide
url http://www.mdpi.com/2076-3417/3/4/675
work_keys_str_mv AT jacekkoziorowski drydistillationofradioiodinefromteo2targets
AT jesperfonslet drydistillationofradioiodinefromteo2targets
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