Design and experimental testing of air slab caps which convert commercial electron diodes into dual purpose, correction-free diodes for small field dosimetry

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Abstract

Results: 1.0 mm of air was required to make the PTWe diode correction-free. This modified diode (PTWeair) produced output factors equivalent to those in water at all field sizes (5-50 mm). The optimal air thickness required for the EDGEe diode was found to be 0.6 mm. The modified diode (EDGEeair) produced output factors equivalent to those in water, except at field sizes of 8 and 10 mmwhere it measured pproximately 2% greater than the relative dose to water. The experimentally calculated k fclin, f msrQclin,Qmsrfor both the PTWe and the EDGEe diodes (without air) matched Monte Carlo simulated results, thus proving that it is feasible to transfer k fclin, f msrQclin,Qmsrfrom one commercially available detector to another using experimental methods and the recommended experimental setup. Conclusions: It is possible to create a diode which does not require corrections for small field output factor measurements. This has been performed and verified experimentally. The ability of a detector to be correction-free depends strongly on its design and composition. A nonwater-equivalent detector can only be correction-free if competing perturbations of the beam cancel out at all field sizes. This should not be confused with true water equivalency of a detector. Purpose: Two diodes which do not require correction factors for small field relative output measurements are designed and validated using experimental methodology. This was achieved by adding an air layer above the active volume of the diode detectors, which canceled out the increase in response of the diodes in small fields relative to standard field sizes. Methods: Due to the increased density of silicon and other components within a diode, additional electrons are created. In very small fields, a very small air gap acts as an effective filter of electrons with a high angle of incidence. The aim was to design a diode that balanced these perturbations to give a response similar to a water-only geometry. Three thicknesses of air were placed at the proximal end of a PTW 60017 electron diode (PTWe) using an adjustable air cap. A set of output ratios (ORfclinDet) for square field sizes of side length down to 5 mm was measured using each air thickness and compared to ORfclinDetmeasured using an IBA stereotactic field diode (SFD). kfclin, f msrQclin,Qmsrwas transferred from the SFD to the PTWe diode and plotted as a function of air gap thickness for each field size. This enabled the optimal air gap thickness to be obtained by observing which thickness of air was required such that k fclin, f msrQclin,Qmsrwas equal to 1.00 at all field sizes. A similar procedure was used to find the optimal air thickness required to make a modified Sun Nuclear EDGE detector (EDGEe) which is correction-free in small field relative dosimetry. In addition, the feasibility of experimentally transferring k fclin, f msrQclin,Qmsrvalues from the SFD to unknown diodes was tested by comparing the experimentally transferred k fclin, f msrQclin,Qmsrvalues for unmodified PTWe and EDGEe diodes to Monte Carlo simulated values.

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Charles, P. H., Cranmer-Sargison, G., Thwaites, D. I., Kairn, T., Crowe, S. B., Pedrazzini, G., … Trapp, J. V. (2014). Design and experimental testing of air slab caps which convert commercial electron diodes into dual purpose, correction-free diodes for small field dosimetry. Medical Physics, 41(10). https://doi.org/10.1118/1.4894728

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