Development of CMOS dosimetry in proton minibeams for enhanced QA and primary standard absorbed dose calorimetry

被引:3
作者
Flynn, Samuel [1 ,2 ]
Allport, Philip [2 ]
De Marzi, Ludovic [3 ]
Green, Stuart [4 ]
Homer, Michael [1 ]
Lee, Nigel [1 ]
Ortiz, Ramon [3 ,5 ]
Patriarca, Annalisa [3 ]
Prezado, Yolanda [3 ,5 ]
Thomas, Russell [1 ,6 ]
Price, Tony [1 ,2 ]
机构
[1] Natl Phys Lab, Med Radiat Sci Grp, Hampton Rd, Teddington TW11 0LW, England
[2] Univ Birmingham, Sch Phys & Astron, Edgbaston Campus, Birmingham B15 2TT, England
[3] Univ PSL, Inst Curie, CNRS UMR3347, Inserm U1021,Signalisat Radiobiol & Canc, F-91898 Orsay, France
[4] Univ Hosp Birmingham NHS Trust, Med Phys, Mindelsohn Way, Birmingham B15 2TH, England
[5] Univ Paris Saclay, CNRS UMR3347, Inserm U1021, Signalisat Radiobiol & Canc, F-91400 Orsay, France
[6] Univ Surrey, Fac Engn & Phys Sci, Stag Hill, Guildford GU2 7XH, England
基金
欧洲研究理事会;
关键词
Dosimetry concepts and apparatus; Instrumentation for hadron therapy; MICROBEAM; RADIOTHERAPY;
D O I
10.1088/1748-0221/18/03/P03014
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Performing accurate and reliable dosimetry in spatially fractionated beams remains a significant challenge due to the steep dose gradients and microscopic scale of features. This results in many conventional detectors and instrumentation being unsuitable for online dosimetry, necessitating frequent offline validation using radiochromic film.In this study, the use of a Complementary Metal-Oxide-Semiconductor (CMOS) detector for evaluation of relative real-time dosimetry of proton minibeam radiation therapy (pMBRT) was investigated. The linearity of the CMOS detector was investigated by varying the proton beam current, with a comparison to a PTW 34001 Roos ionisation chamber used to carry out an independent check. It was found that the relative peaks and valleys of the pMBRT beam could be measured, with results comparable to EBT3XD film. The high sensitivity of the CMOS detector meant it was able to measure dose profiles from peak to valley regions, something not possible with the EBT3XD. The CMOS detector was compared to the treatment delivery log files, with correlation in beam positionseen as the beam is scanned along each slit, but not across; and agreement in beam intensity, with the CMOS detector able to observe beam interruptions.Lastly, the CMOS detector was used in conjunction with the NPL primary-standard proton calorimeter (NPL PSPC) for a preliminary study on combining the NPL PSPC with high resolution temporal information about the incident pMBRT beam. The ultimate aim of this approach is to facilitate detailed thermal modelling to reduce the overall uncertainty in the absolute dose measured from the calorimeter. In these experiments, saturation in the CMOS pixels prevented further thermal modelling of the radiation induced heat flow, however the instantaneous dose rate was observed to be comparable with the predicted NPL PSPC response obtained by masking the CMOS detector.
引用
收藏
页数:24
相关论文
共 44 条
[21]   Monitoring pencil beam scanned proton radiotherapy using a large format CMOS detector [J].
Flynn, Samuel ;
Manolopoulos, Spyros ;
Rompokos, Vasilis ;
Poynter, Andrew ;
Toltz, Allison ;
Beck, Lana ;
Ballisat, Laura ;
Velthuis, Jaap ;
Allport, Philip ;
Green, Stuart ;
Thomas, Russell ;
Price, Tony .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2022, 1033
[22]   First demonstration of real-time in-situ dosimetry of X-ray microbeams using a large format CMOS sensor [J].
Flynn, Samuel ;
Price, Tony ;
Allport, Philip P. ;
Patallo, Ileana Silvestre ;
Thomas, Russell ;
Subiel, Anna ;
Bartzsch, Stefan ;
Treibel, Franziska ;
Ahmed, Mabroor ;
Jacobs-Headspith, Jon ;
Edwards, Tim ;
Jones, Isaac ;
Cathie, Dan ;
Guerrini, Nicola ;
Sedgwick, Iain .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2020, 978
[23]   Evaluation of a pixelated large format CMOS sensor for x-ray microbeam radiotherapy [J].
Flynn, Samuel ;
Price, Tony ;
Allport, Philip P. ;
Patallo, Ileana Silvestre ;
Thomas, Russell ;
Subiel, Anna ;
Bartzsch, Stefan ;
Treibel, Franziska ;
Ahmed, Mabroor ;
Jacobs-Headspith, Jon ;
Edwards, Tim ;
Jones, Isaac ;
Cathie, Dan ;
Guerrini, Nicola ;
Sedgwick, Iain .
MEDICAL PHYSICS, 2020, 47 (03) :1305-1316
[24]   Optimization of the mechanical collimation for minibeam generation in proton minibeam radiation therapy [J].
Guardiola, Consuelo ;
Peucelle, Cecile ;
Prezado, Yolanda .
MEDICAL PHYSICS, 2017, 44 (04) :1470-1478
[25]   Challenges in calculation of the gamma index in radiotherapy - Towards good practice [J].
Hussein, M. ;
Clark, C. H. ;
Nisbet, A. .
PHYSICA MEDICA-EUROPEAN JOURNAL OF MEDICAL PHYSICS, 2017, 36 :1-11
[26]  
International Atomic Energy Agency, 2016, ACC REQ UNC RAD
[27]  
Kacperek S., 2022, PHYS MED BIOL, V67
[28]   Short and long-term evaluation of the impact of proton minibeam radiation therapy on motor, emotional and cognitive functions [J].
Lamirault, Charlotte ;
Doyere, Valerie ;
Juchaux, Marjorie ;
Pouzoulet, Frederic ;
Labiod, Dalila ;
Dendale, Remi ;
Patriarca, Annalisa ;
Nauraye, Catherine ;
Le Dudal, Marine ;
Jouvion, Gregory ;
Hardy, David ;
El Massioui, Nicole ;
Prezado, Yolanda .
SCIENTIFIC REPORTS, 2020, 10 (01)
[29]   Collimator design for spatially-fractionated proton beams for radiobiology research [J].
Lee, Eunsin ;
Meyer, Juergen ;
Sandison, George .
PHYSICS IN MEDICINE AND BIOLOGY, 2016, 61 (14) :5378-5389
[30]   Application of a portable primary standard level graphite calorimeter for absolute dosimetry in a clinical low-energy passively scattered proton beam [J].
Lourenco, A. ;
Lee, N. ;
Shipley, D. ;
Romano, F. ;
Kacperek, A. ;
Duane, S. ;
Cashmore, M. ;
Bass, G. ;
Palmans, H. ;
Thomas, R. .
PHYSICS IN MEDICINE AND BIOLOGY, 2022, 67 (22)