Cargando…

A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy

PURPOSE: Commercially available systems for ion beam reference dosimetry in water are mainly based on ionization chambers. In those systems, a large number of small detectors are typically arranged in a two‐dimensional (2D) array or matrix to achieve high spatial resolution (order of several millime...

Descripción completa

Detalles Bibliográficos
Autores principales: Leidner, Johannes, Ciocca, Mario, Mairani, Andrea, Murtas, Fabrizio, Silari, Marco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7384041/
https://www.ncbi.nlm.nih.gov/pubmed/32135033
http://dx.doi.org/10.1002/mp.14119
_version_ 1783563543233167360
author Leidner, Johannes
Ciocca, Mario
Mairani, Andrea
Murtas, Fabrizio
Silari, Marco
author_facet Leidner, Johannes
Ciocca, Mario
Mairani, Andrea
Murtas, Fabrizio
Silari, Marco
author_sort Leidner, Johannes
collection PubMed
description PURPOSE: Commercially available systems for ion beam reference dosimetry in water are mainly based on ionization chambers. In those systems, a large number of small detectors are typically arranged in a two‐dimensional (2D) array or matrix to achieve high spatial resolution (order of several millimeters) and large field coverage at the same time. The goal of this work was to investigate the reliability of a detector of superior spatial resolution to perform three‐dimensional (3D) ionization measurements in carbon ion pencil beams. METHODS: The GEMPix is a small gaseous detector with a highly pixelated readout, consisting of a drift region (with 2.8 cm(3) × 2.8 cm(3) × 0.3 cm(3) volume), three gas electron multipliers (GEMs) for signal amplification and four Timepix ASICs with 55 µm pixel pitch and a total of 262,144 pixels. An integrated system was designed and built, which consists of a commercial water phantom with a three‐axis motorized arm, a reference large‐area ionization chamber for signal normalization to the beam output and the GEMPix itself. Measurements at different depths in water have been performed at the Italian National Centre for Oncological Hadrontherapy (CNAO) with three carbon ion beam energies. Lateral beam profiles measured with the GEMPix at the shallowest depth were compared to those measured with radiochromic EBT3 films in air in the position of the reference ionization chamber. The Timepix readout was calibrated in energy by using one independent depth scan with carbon ions of 150 mm range. Bragg peak curves were also simulated using the Monte Carlo FLUKA code as a reference. RESULTS: Beam profiles measured with the GEMPix were smooth and showed similar shape and full width at half maximum when compared to those measured with radiochromic EBT3 films. Smooth, reproducible Bragg curves were obtained with statistical uncertainties of about 2%, matching FLUKA simulations of the Bragg curves within 15% for most data points. This difference is partially explained for the measurement with carbon ions of 150 mm range by a saturation effect in the GEMs. The high granularity of the readout allowed to produce 2D images of the deposited dose at different depths, as well as 3D data distributions. CONCLUSIONS: This paper demonstrates the capability of the GEMPix detector to measure the 3D dose distribution of carbon ions in water for a clinical pencil beam reliably. In the future, the detector area will be increased to cover fields of scanned beams. Measurements at higher beam intensities and with protons are planned.
format Online
Article
Text
id pubmed-7384041
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-73840412020-07-28 A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy Leidner, Johannes Ciocca, Mario Mairani, Andrea Murtas, Fabrizio Silari, Marco Med Phys COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY PURPOSE: Commercially available systems for ion beam reference dosimetry in water are mainly based on ionization chambers. In those systems, a large number of small detectors are typically arranged in a two‐dimensional (2D) array or matrix to achieve high spatial resolution (order of several millimeters) and large field coverage at the same time. The goal of this work was to investigate the reliability of a detector of superior spatial resolution to perform three‐dimensional (3D) ionization measurements in carbon ion pencil beams. METHODS: The GEMPix is a small gaseous detector with a highly pixelated readout, consisting of a drift region (with 2.8 cm(3) × 2.8 cm(3) × 0.3 cm(3) volume), three gas electron multipliers (GEMs) for signal amplification and four Timepix ASICs with 55 µm pixel pitch and a total of 262,144 pixels. An integrated system was designed and built, which consists of a commercial water phantom with a three‐axis motorized arm, a reference large‐area ionization chamber for signal normalization to the beam output and the GEMPix itself. Measurements at different depths in water have been performed at the Italian National Centre for Oncological Hadrontherapy (CNAO) with three carbon ion beam energies. Lateral beam profiles measured with the GEMPix at the shallowest depth were compared to those measured with radiochromic EBT3 films in air in the position of the reference ionization chamber. The Timepix readout was calibrated in energy by using one independent depth scan with carbon ions of 150 mm range. Bragg peak curves were also simulated using the Monte Carlo FLUKA code as a reference. RESULTS: Beam profiles measured with the GEMPix were smooth and showed similar shape and full width at half maximum when compared to those measured with radiochromic EBT3 films. Smooth, reproducible Bragg curves were obtained with statistical uncertainties of about 2%, matching FLUKA simulations of the Bragg curves within 15% for most data points. This difference is partially explained for the measurement with carbon ions of 150 mm range by a saturation effect in the GEMs. The high granularity of the readout allowed to produce 2D images of the deposited dose at different depths, as well as 3D data distributions. CONCLUSIONS: This paper demonstrates the capability of the GEMPix detector to measure the 3D dose distribution of carbon ions in water for a clinical pencil beam reliably. In the future, the detector area will be increased to cover fields of scanned beams. Measurements at higher beam intensities and with protons are planned. John Wiley and Sons Inc. 2020-03-21 2020-06 /pmc/articles/PMC7384041/ /pubmed/32135033 http://dx.doi.org/10.1002/mp.14119 Text en © 2020 The Authors. Medical Physics published by Wiley Periodicals, Inc. on behalf of American Association of Physicists in Medicine. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY
Leidner, Johannes
Ciocca, Mario
Mairani, Andrea
Murtas, Fabrizio
Silari, Marco
A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy
title A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy
title_full A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy
title_fullStr A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy
title_full_unstemmed A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy
title_short A GEMPix‐based integrated system for measurements of 3D dose distributions in water for carbon ion scanning beam radiotherapy
title_sort gempix‐based integrated system for measurements of 3d dose distributions in water for carbon ion scanning beam radiotherapy
topic COMPUTATIONAL AND EXPERIMENTAL DOSIMETRY
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7384041/
https://www.ncbi.nlm.nih.gov/pubmed/32135033
http://dx.doi.org/10.1002/mp.14119
work_keys_str_mv AT leidnerjohannes agempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT cioccamario agempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT mairaniandrea agempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT murtasfabrizio agempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT silarimarco agempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT leidnerjohannes gempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT cioccamario gempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT mairaniandrea gempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT murtasfabrizio gempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy
AT silarimarco gempixbasedintegratedsystemformeasurementsof3ddosedistributionsinwaterforcarbonionscanningbeamradiotherapy