Zugriffsnummer 54074
Dokumenttyp Zeitschriftenartikel Open Access Hybrid
Peer Review mit Peer Review
Sprache Englisch
Titel Evaluation of the two‐voltage method for parallel‐plate ionization chambers irradiated with pulsed beams
Autor(in); Institution
Paz‐Martín, José; Departamento de Física de Partículas Universidade de Santiago de Compostela, Santiago de Compostela, SPAIN
Schüller, Andreas; 6.2, Dosimetrie für Strahlentherapie und Röntgendiagnostik, PTB-Braunschweig
Bourgouin, Alexandra; National Research Council of Canada Metrology Research Center Ottawa, CANADA
Gago‐Arias, Araceli; Departamento de Física de Partículas Universidade de Santiago de Compostela, Santiago de Compostela, SPAIN
González‐Castaño, Diego M.; Laboratorio de Radiofísica Universidade de Santiago, Santiago de Compostela, SPAIN
Gómez‐Fernández, Nicolás; Laboratorio de Radiofísica Universidade de Santiago, Santiago de Compostela, SPAIN
Pardo‐Montero, Juan; Department of Medical Physics Complexo Hospitalario Universitario de Santiago de Compostela, Santiago de Compostela, SPAIN
Gómez, Faustino; Laboratorio de Radiofísica Universidade de Santiago, Santiago de Compostela, SPAIN
Quelle/Jahr Medical Physics: 52 (2025), 6, 4894 - 4909
ISSN 0094-2405 (print) ; 2473-4209 (online)
DOI
URL
Verlag Hoboken, NJ: Wiley
Freie Schlagworte recombination ; saturation factor ; two-voltage method
Zusammenfassung Background Air-vented ionization chambers exposed to clinical radiation beams may suffer from recombination during the drift of the charge carriers towards the electrodes. Thus, dosimetry protocols recommend the use of a correction factor, usually denominated saturation factor (ksat), to correct the ionization chamber readout for the incomplete collection of charge. The two-voltage method (TVM) is the recommended methodology for the calculation of the saturation factor, however, it is based on the early Boag model, which only takes into account the presence of positive and negative ions in the ionization chamber and does not account for the electric field screening or the free electron contribution to the signal. Purpose To evaluate the impact of a more realistic approach to the saturation problem that accounts for the free electron fraction. Methods The saturation factor of four ionization chambers (two Advanced Markus and two PPC05) was experimentally determined in the ultra-high dose per pulse reference beam of the German National Metrology Institute (Physikalisch-Technische Bundesanstalt [PTB]) for voltages ranging from 50 to 400 V and pulse durations between 0.5 and 2.9 μs. Several analytical models and a recently developed numerical model are used to calculate the saturation factor as a function of the dose per pulse and compare it to the obtained experimental data. Parameterizations of the saturation factor against the ratio of charges at different voltages are given for parallel plate ionization chamber with a distance between electrodes of 0.6 and 1 mm in pulsed beams for different pulse durations. Results The saturation factors calculated using the different Boag analytical models do not agree neither with each other nor with the numerical simulation even at the lowest dose per pulse of the investigated range (<30 mGy). A recently developed analytical model by Fenwick and Kumar agrees with the numerical simulation in the low dose per pulse regime but discrepancies are observed when the dose becomes larger (i.e., >40 mGy for Advanced Markus) due to the electric field perturbation. The numerical simulation is in a good agreement with the experimentally determined charge collection efficiency (CCE) with an average discrepancy of 0.7% for the two PPC05 and 0.5% for the two Advanced Markus. The saturation factor obtained with the numerical simulation of the collected charge has been fitted to a third-order polynomial for different voltage ratios and pulse duration. This methodology provides a practical way for ksatevaluation whenever ksat < 1.05. Conclusions The numerical simulation shows a better agreement with the experimental data than the current analytical theories in terms of CCE. The classical TVM, systematically overestimates the saturation factor, with differences increasing with dose per pulse but also present at low dose per pulse. These results may have implications for the dosimetry with ionization chambers in therapy modalities that use a dose per pulse higher than conventional radiotherapy such as intraoperative radiotherapy but also in conventional dose per pulse for ionization chambers that suffer from significant charge recombination.
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Rechteinformation CC BY-NC 4.0 ; Creative Commons Attribution NonCommercial 4.0 License
Förderinformationen (1) Förderername: European Commission (EC)
Förderer ID: 0000 0001 2242 8989
Förderer ID Typ: ISNI
Förderprogramm: EMPIR 2018 Health
Titel der Förderung: 18HLT04: UHDpulse: Metrology for advanced radiotherapy using particle beams with ultra-high pulse dose rates
Förderungsnummer: 18HLT04
Förderinformationen (2) Förderername: Xunta de Galicia, Axencia Galega de Innovación
Förderungsnummer: IN607D2022
Förderinformationen (3) Förderername: Caixa de Pensions (CPVA)
Förderer ID: 0000 0001 2109 2854
Förderer ID Typ: ISNI
Titel der Förderung: Dosimetry monitor for FLASH therapy
Förderungsnummer: HR23-00718
Förderinformationen (4) Förderername: European Union NextGenerationEU/PRTR
Förderungsnummer: PLEC2022-009476
Förderinformationen (5) Förderername: Spanish State Research Agency
Förderungsnummer: PLEC2022-009476

Zitierung

Paz‐Martín, J., Schüller, A., Bourgouin, A., Gago‐Arias, A., González‐Castaño, D. M., Gómez‐Fernández, N., Pardo‐Montero, J., & Gómez, F. (2025). Evaluation of the two‐voltage method for parallel‐plate ionization chambers irradiated with pulsed beams. Medical Physics, 52(6), 4894–4909. https://doi.org/10.1002/mp.17814

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