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An experimental MOSFET approach to characterize (192)Ir HDR source anisotropy

journal contribution
posted on 2024-11-01, 03:18 authored by Warren Toye, K.R. Das, S.P. Todd, M.B. Kenny, Rick FranichRick Franich, Peter Johnston
The dose anisotropy around a Ir-192 HDR source in a water phantom has been measured using MOSFETs as relative dosimeters. In addition, modeling using the EGSnrc code has been performed to provide a complete dose distribution consistent with the MOSFET measurements. Doses around the Nucletron 'classic' Ir-192 HDR source were measured for a range of radial distances from 5 to 30 mm within a 40 x 30 x 30 cm(3) water phantom, using a TN-RD-50 MOSFET dosimetry system with an active area of 0.2 mm by 0.2 mm. For each successive measurement a linear stepper capable of movement in intervals of 0.0125 mm re-positioned the MOSFET at the required radial distance, while a rotational stepper enabled angular displacement of the source at intervals of 0.9 degrees. The source-dosimeter arrangement within the water phantom was modeled using the standardized cylindrical geometry of the DOSRZnrc user code. In general, the measured relative anisotropy at each radial distance from 5 mm to 30 mm is in good agreement with the EGSnrc simulations, benchmark Monte Carlo simulation and TLD measurements where they exist. The experimental approach employing a MOSFET detection system of small size, high spatial resolution and fast read out capability allowed a practical approach to the determination of dose anisotropy around a HDR source.

History

Journal

Physics In Medicine And Biology

Volume

52

Issue

17

Start page

5329

End page

5339

Total pages

11

Publisher

IOP Publishing

Place published

Bristol

Language

English

Copyright

© 2007 IOP Publishing Ltd

Former Identifier

2006005672

Esploro creation date

2020-06-22

Fedora creation date

2009-02-27

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