Sensitivity calibration procedures in optical-CT scanning of BANG®3 polymer gel dosimeters

被引:25
作者
Xu, Y. [1 ]
Wuu, Cheng-Shie [1 ]
Maryanski, Marek J. [1 ,2 ]
机构
[1] Columbia Univ, Dept Radiat Oncol, New York, NY 10032 USA
[2] MGS Res Inc, Madison, CT 06443 USA
基金
美国国家卫生研究院;
关键词
calibration; dosimeters; dosimetry; optical tomography; phantoms; polymer gels; RADIATION-DOSE DISTRIBUTIONS; COMPUTED-TOMOGRAPHY; VERIFICATION; THERAPY; MRI; RADIOSURGERY; RADIOTHERAPY; TEMPERATURE; PERFORMANCE; PHANTOM;
D O I
10.1118/1.3298017
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
The dose response of the BANG (R) 3 polymer gel dosimeter (MGS Research Inc., Madison, CT) was studied using the OCTOPUS (TM) laser CT scanner (MGS Research Inc., Madison, CT). Six 17 cm diameter and 12 cm high Barex cylinders, and 18 small glass vials were used to house the gel. The gel phantoms were irradiated with 6 and 10 MV photons, as well as 12 and 16 MeV electrons using a Varian Clinac 2100EX. Three calibration methods were used to obtain the dose response curves: (a) Optical density measurements on the 18 glass vials irradiated with graded doses from 0 to 4 Gy using 6 or 10 MV large field irradiations; (b) optical-CT scanning of Barex cylinders irradiated with graded doses (0.5, 1, 1.5, and 2 Gy) from four adjacent 4x4 cm(2) photon fields or 6x6 cm(2) electron fields; and (c) percent depth dose (PDD) comparison of optical-CT scans with ion chamber measurements for 6x6 cm(2), 12 and 16 MeV electron fields. The dose response of the BANG (R) 3 gel was found to be linear and energy independent within the uncertainties of the experimental methods (about 3%). The slopes of the linearly fitted dose response curves (dose sensitivities) from the four field irradiations (0.0752 +/- 3%, 0.0756 +/- 3%, 0.0767 +/- 3%, and 0.0759 +/- 3% cm(-1) Gy(-1)) and the PDD matching methods (0.0768 +/- 3% and 0.0761 +/- 3% cm(-1) Gy(-1)) agree within 2.2%, indicating a good reproducibility of the gel dose response within phantoms of the same geometry. The dose sensitivities from the glass vial approach are different from those of the cylindrical Barex phantoms by more than 30%, owing probably to the difference in temperature inside the two types of phantoms during gel formation and irradiation, and possible oxygen contamination of the glass vial walls. The dose response curve obtained from the PDD matching approach with 16 MeV electron field was used to calibrate the gel phantom irradiated with the 12 MeV, 6x6 cm(2) electron field. Three-dimensional dose distributions from the gel measurement and the Eclipse planning system (Varian Corporation, Palo Alto, CA) were compared and evaluated using 3% dose difference and 2 mm distance-to-agreement criteria.
引用
收藏
页码:861 / 868
页数:8
相关论文
共 40 条
[1]  
Adamovics J, 2004, MED PHYS, V31, P1906
[2]   Experimental determination of the diffusion coefficient in two-dimensions in ferrous sulphate gels using the finite element method [J].
Baldock C. ;
Harris P.J. ;
Piercy A.R. ;
Healy B. .
Australasian Physics & Engineering Sciences in Medicine, 2001, 24 (1) :19-30
[3]   CONFIRMATION OF TARGET LOCALIZATION AND DOSIMETRY FOR 3D CONFORMAL RADIOTHERAPY TREATMENT PLANNING BY MR-IMAGING OF A FERROUS SULFATE GEL HEAD PHANTOM [J].
CHAN, MF ;
AYYANGAR, KM .
MEDICAL PHYSICS, 1995, 22 (07) :1171-1175
[4]   Introducing gel dosimetry in a clinical environment: Customization of polymer gel composition and magnetic resonance imaging parameters used for 3D dose verifications in radiosurgery and intensity modulated radiotherapy [J].
Crescenti, Remo A. ;
Scheib, Stefan G. ;
Schneider, Uwe ;
Gianolini, Stefano .
MEDICAL PHYSICS, 2007, 34 (04) :1286-1297
[5]   Three-dimensional dosimetry using polymer gel and magnetic resonance imaging applied to the verification of conformal radiation therapy in head-and-neck cancer [J].
De Deene, Y ;
De Wagter, C ;
Van Duyse, B ;
Derycke, S ;
De Neve, W ;
Achten, E .
RADIOTHERAPY AND ONCOLOGY, 1998, 48 (03) :283-291
[6]  
DeJean P., 2006, Journal of Physics: Conference Series, V56, P183, DOI 10.1088/1742-6596/56/1/023
[7]  
Doran S., 2006, Journal of Physics: Conference Series, V56, P231, DOI 10.1088/1742-6596/56/1/036
[8]   A CCD-based optical CT scanner for high-resolution 3D imaging of radiation dose distributions: equipment specifications, optical simulations and preliminary results [J].
Doran, SJ ;
Koerkamp, KK ;
Bero, MA ;
Jenneson, P ;
Morton, EJ ;
Gilboy, WB .
PHYSICS IN MEDICINE AND BIOLOGY, 2001, 46 (12) :3191-3213
[9]   Polymer gels for magnetic resonance imaging of radiation dose distributions at normal room atmosphere [J].
Fong, PM ;
Keil, DC ;
Does, MD ;
Gore, JC .
PHYSICS IN MEDICINE AND BIOLOGY, 2001, 46 (12) :3105-3113
[10]   Modelling of polyacrylamide gel dosimeters with spatially non-uniform radiation dose distributions [J].
Fuxman, AM ;
McAuley, KB ;
Schreiner, LJ .
CHEMICAL ENGINEERING SCIENCE, 2005, 60 (05) :1277-1293