An optimized calibration method for surface measurements with MOSFETs in shaped-beam radiosurgery.

A Sors, E Cassol, I Latorzeff, P Duthil, J Sabatier, J A Lotterie, A Redon, I Berry, X Franceries

Journal: Physica medica : PM : an international journal devoted to the applications of physics to medicine and biology : official journal of the Italian Association of Biomedical Physics (AIFB) 2014;30(1):10-7

PMID: 23623590

Abstract

Nowadays MOSFET dosimeters are widely used for dose verification in radiotherapy procedures. Although their sensitive area satisfies size requirements for small field dosimetry, their use in radiosurgery has rarely been reported. The aim of this study is to propose and optimize a calibration method to perform surface measurements in 6 MV shaped-beam radiosurgery for field sizes down to 18 × 18 mm(2). The effect of different parameters such as recovery time between 2 readings, batch uniformity and build-up cap attenuation was studied. Batch uniformity was found to be within 2% and isocenter dose attenuation due to the build-up cap over the MOSFET was near 2% irrespective of field size. Two sets of sensitivity coefficients (SC) were determined for TN-502RD MOSFET dosimeters using experimental and calculated calibration; the latter being developed using an inverse square law model. Validation measurements were performed on a realistic head phantom in irregular fields. MOSFET dose values obtained by applying either measured or calculated SC were compared. For calibration, optimal results were obtained for an inter-measurement time lapse of 5 min. We also found that fitting the SC values with the inverse square law reduced the number of measurements required for calibration. The study demonstrated that combining inverse square law and Sterling-Worthley formula resulted in an underestimation of up to 4% of the dose measured by MOSFETs for complex beam geometries. With the inverse square law, it is possible to reduce the number of measurements required for calibration for multiple field-SSD combinations. Our results suggested that MOSFETs are suitable sensors for dosimetry when used at the surface in shaped-beam radiosurgery down to 18 × 18 mm(2).

Copyright © 2013 Associazione Italiana di Fisica Medica. Published by Elsevier Ltd. All rights reserved.

Address: Inserm, Imagerie cérébrale et handicaps neurologiques, UMR 825, F-31059 Toulouse, France; Centre de Radiochirurgie Stéréotaxique, Biophysique Médicale - CHU Rangueil, av. J. Poulhès - TSA 50032, 31059 Toulouse Cedex 9, France. Electronic address: [email protected].; Inserm, Imagerie cérébrale et handicaps neurologiques, UMR 825, F-31059 Toulouse, France; Unité de Radiophysique et de Radioprotection, CHU Toulouse, France.; Centre de Radiochirurgie Stéréotaxique, Biophysique Médicale - CHU Rangueil, av. J. Poulhès - TSA 50032, 31059 Toulouse Cedex 9, France; Groupe Oncorad Garonne, France.; Unité de Radiophysique et de Radioprotection, CHU Toulouse, France.; Centre de Radiochirurgie Stéréotaxique, Biophysique Médicale - CHU Rangueil, av. J. Poulhès - TSA 50032, 31059 Toulouse Cedex 9, France.; Inserm, Imagerie cérébrale et handicaps neurologiques, UMR 825, F-31059 Toulouse, France; Centre de Radiochirurgie Stéréotaxique, Biophysique Médicale - CHU Rangueil, av. J. Poulhès - TSA 50032, 31059 Toulouse Cedex 9, France.; Inserm, Imagerie cérébrale et handicaps neurologiques, UMR 825, F-31059 Toulouse, France; Université de Toulouse, UPS, INPT, LAPLACE Laboratoire Plasma et Conversion d'Energie, 118 route de Narbonne, F-31062 Toulouse Cedex 9, France; Universitéde Toulouse, UPS, Imagerie cérébrale et handicaps neurologiques, UMR 825, F-31059 Toulouse, France.
Bant logo

© Copyright 2026, Nutrition Evidence

NED wishes to thank the following organisations for their support:

We use cookies to improve your experience and analyze site traffic with Google Analytics. By continuing to use our site, you agree to our use of cookies. Learn more.