Helium radiography with a digital tracking calorimeter—a Monte Carlo study for secondary track rejection. (22nd January 2021)
- Record Type:
- Journal Article
- Title:
- Helium radiography with a digital tracking calorimeter—a Monte Carlo study for secondary track rejection. (22nd January 2021)
- Main Title:
- Helium radiography with a digital tracking calorimeter—a Monte Carlo study for secondary track rejection
- Authors:
- Pettersen, Helge Egil Seime
Volz, Lennart
Sølie, Jarle Rambo
Alme, Johan
Barnaföldi, Gergely Gábor
Barthel, Rene
van den Brink, Anthony
Borshchov, Vyacheslav
Chaar, Mamdouh
Eikeland, Viljar
Genov, Georgi
Grøttvik, Ola
Helstrup, Håvard
Keidel, Ralf
Kobdaj, Chinorat
van der Kolk, Naomi
Mehendale, Shruti
Meric, Ilker
Harald Odland, Odd
Papp, Gábor
Peitzmann, Thomas
Piersimoni, Pierluigi
Protsenko, Maksym
Ur Rehman, Attiq
Richter, Matthias
Tefre Samnøy, Andreas
Seco, Joao
Shafiee, Hesam
Songmoolnak, Arnon
Tambave, Ganesh
Tymchuk, Ihor
Ullaland, Kjetil
Varga-Kofarago, Monika
Wagner, Boris
Xiao, RenZheng
Yang, Shiming
Yokoyama, Hiroki
Röhrich, Dieter
… (more) - Abstract:
- Abstract: Radiation therapy using protons and heavier ions is a fast-growing therapeutic option for cancer patients. A clinical system for particle imaging in particle therapy would enable online patient position verification, estimation of the dose deposition through range monitoring and a reduction of uncertainties in the calculation of the relative stopping power of the patient. Several prototype imaging modalities offer radiography and computed tomography using protons and heavy ions. A Digital Tracking Calorimeter (DTC), currently under development, has been proposed as one such detector. In the DTC 43 longitudinal layers of laterally stacked ALPIDE CMOS monolithic active pixel sensor chips are able to reconstruct a large number of simultaneously recorded proton tracks. In this study, we explored the capability of the DTC for helium imaging which offers favorable spatial resolution over proton imaging. Helium ions exhibit a larger cross section for inelastic nuclear interactions, increasing the number of produced secondaries in the imaged object and in the detector itself. To that end, a filtering process able to remove a large fraction of the secondaries was identified, and the track reconstruction process was adapted for helium ions. By filtering on the energy loss along the tracks, on the incoming angle and on the particle ranges, 97.5% of the secondaries were removed. After passing through 16 cm water, 50.0% of the primary helium ions survived; after the proposedAbstract: Radiation therapy using protons and heavier ions is a fast-growing therapeutic option for cancer patients. A clinical system for particle imaging in particle therapy would enable online patient position verification, estimation of the dose deposition through range monitoring and a reduction of uncertainties in the calculation of the relative stopping power of the patient. Several prototype imaging modalities offer radiography and computed tomography using protons and heavy ions. A Digital Tracking Calorimeter (DTC), currently under development, has been proposed as one such detector. In the DTC 43 longitudinal layers of laterally stacked ALPIDE CMOS monolithic active pixel sensor chips are able to reconstruct a large number of simultaneously recorded proton tracks. In this study, we explored the capability of the DTC for helium imaging which offers favorable spatial resolution over proton imaging. Helium ions exhibit a larger cross section for inelastic nuclear interactions, increasing the number of produced secondaries in the imaged object and in the detector itself. To that end, a filtering process able to remove a large fraction of the secondaries was identified, and the track reconstruction process was adapted for helium ions. By filtering on the energy loss along the tracks, on the incoming angle and on the particle ranges, 97.5% of the secondaries were removed. After passing through 16 cm water, 50.0% of the primary helium ions survived; after the proposed filtering 42.4% of the primaries remained; finally after subsequent image reconstruction 31% of the primaries remained. Helium track reconstruction leads to more track matching errors compared to protons due to the increased available focus strength of the helium beam. In a head phantom radiograph, the Water Equivalent Path Length error envelope was 1.0 mm for helium and 1.1 mm for protons. This accuracy is expected to be sufficient for helium imaging for pre-treatment verification purposes. … (more)
- Is Part Of:
- Physics in medicine & biology. Volume 66:Number 3(2021)
- Journal:
- Physics in medicine & biology
- Issue:
- Volume 66:Number 3(2021)
- Issue Display:
- Volume 66, Issue 3 (2021)
- Year:
- 2021
- Volume:
- 66
- Issue:
- 3
- Issue Sort Value:
- 2021-0066-0003-0000
- Page Start:
- Page End:
- Publication Date:
- 2021-01-22
- Subjects:
- helium radiography -- digital tracking calorimeter -- helium imaging -- list mode imaging -- nuclear interactions
Biophysics -- Periodicals
Medical physics -- Periodicals
610.153 - Journal URLs:
- http://ioppublishing.org/ ↗
http://iopscience.iop.org/0031-9155 ↗ - DOI:
- 10.1088/1361-6560/abca03 ↗
- Languages:
- English
- ISSNs:
- 0031-9155
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 24992.xml