• Je něco špatně v tomto záznamu ?

Configuration of Timepix3 read-out parameters for spectral measurements in proton therapy applications

P. Stasica-Dudek, C. Oancea, C. Granja, K. Guguła, J. Jakubek, R. Kopeć, D. Krzempek, M. Matous, A. Rucinski, M. Rydygier, J. Gajewski

. 2025 ; 130 (-) : 104885. [pub] 20250117

Jazyk angličtina Země Itálie

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/bmc25010027

PURPOSE: With the increasing use of proton therapy, there is a growing emphasis on including radiation quality, often quantified by linear energy transfer, as a treatment plan optimization factor. The Timepix detectors offer energy-sensitive particle tracking useful for the characterization of proton linear energy transfer. To improve the detector's performance in mixed radiation fields produced in proton therapy, we customized the detector settings and performed the per-pixel energy calibration. METHODS: The detection threshold and per-pixel signal shaping time (IKrum current) were customized, and energy calibration was performed for MiniPIX Timepix3. The detector calibration was verified using α source and clinical proton beams, as well as Monte Carlo simulations. The effects on the detector's performance, in terms of spectral saturation and pixel occupancy, were evaluated. RESULTS: Measurements with proton beams showed a good agreement with simulations. With the customized settings, the measurable energy range in the detector data-driven mode was extended, and the signal duration time was reduced by 80%, while the yield of pixel time occupancy reduction depends on the number of occupied pixels. For performed measurements with proton beams, the number of occupied pixels was further reduced up to 40% due to the increased threshold. CONCLUSIONS: Customized detector configuration of the Timepix3 detector allowed for reduced pixel occupancy and mitigation of signal saturation in a data-driven mode without significantly interfering with the energy deposition measurement. The presented approach enables the extension of the operational range, including higher intensities and mixed-radiation fields in particle radiotherapy environments.

Citace poskytuje Crossref.org

000      
00000naa a2200000 a 4500
001      
bmc25010027
003      
CZ-PrNML
005      
20250429135142.0
007      
ta
008      
250415e20250117it f 000 0|eng||
009      
AR
024    7_
$a 10.1016/j.ejmp.2024.104885 $2 doi
035    __
$a (PubMed)39826466
040    __
$a ABA008 $b cze $d ABA008 $e AACR2
041    0_
$a eng
044    __
$a it
100    1_
$a Stasica-Dudek, Paulina $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland. Electronic address: paulina.stasica@ifj.edu.pl
245    10
$a Configuration of Timepix3 read-out parameters for spectral measurements in proton therapy applications / $c P. Stasica-Dudek, C. Oancea, C. Granja, K. Guguła, J. Jakubek, R. Kopeć, D. Krzempek, M. Matous, A. Rucinski, M. Rydygier, J. Gajewski
520    9_
$a PURPOSE: With the increasing use of proton therapy, there is a growing emphasis on including radiation quality, often quantified by linear energy transfer, as a treatment plan optimization factor. The Timepix detectors offer energy-sensitive particle tracking useful for the characterization of proton linear energy transfer. To improve the detector's performance in mixed radiation fields produced in proton therapy, we customized the detector settings and performed the per-pixel energy calibration. METHODS: The detection threshold and per-pixel signal shaping time (IKrum current) were customized, and energy calibration was performed for MiniPIX Timepix3. The detector calibration was verified using α source and clinical proton beams, as well as Monte Carlo simulations. The effects on the detector's performance, in terms of spectral saturation and pixel occupancy, were evaluated. RESULTS: Measurements with proton beams showed a good agreement with simulations. With the customized settings, the measurable energy range in the detector data-driven mode was extended, and the signal duration time was reduced by 80%, while the yield of pixel time occupancy reduction depends on the number of occupied pixels. For performed measurements with proton beams, the number of occupied pixels was further reduced up to 40% due to the increased threshold. CONCLUSIONS: Customized detector configuration of the Timepix3 detector allowed for reduced pixel occupancy and mitigation of signal saturation in a data-driven mode without significantly interfering with the energy deposition measurement. The presented approach enables the extension of the operational range, including higher intensities and mixed-radiation fields in particle radiotherapy environments.
650    12
$a protonová terapie $x přístrojové vybavení $7 D061766
650    12
$a metoda Monte Carlo $7 D009010
650    _2
$a kalibrace $7 D002138
650    _2
$a lineární přenos energie $7 D018499
655    _2
$a časopisecké články $7 D016428
700    1_
$a Oancea, Cristina $u ADVACAM, Research and Development Department, Prague, Czech Republic
700    1_
$a Granja, Carlos $u ADVACAM, Research and Development Department, Prague, Czech Republic
700    1_
$a Guguła, Konrad $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland
700    1_
$a Jakubek, Jan $u ADVACAM, Research and Development Department, Prague, Czech Republic
700    1_
$a Kopeć, Renata $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland
700    1_
$a Krzempek, Dawid $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland
700    1_
$a Matous, Michal $u ADVACAM, Research and Development Department, Prague, Czech Republic
700    1_
$a Rucinski, Antoni $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland
700    1_
$a Rydygier, Marzena $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland
700    1_
$a Gajewski, Jan $u The Henryk Niewodniczański Institute of Nuclear Physics Polish Academy of Sciences, Cyclotron Centre Bronowice, Krakow, Poland
773    0_
$w MED00167391 $t Physica medica $x 1724-191X $g Roč. 130 (20250117), s. 104885
856    41
$u https://pubmed.ncbi.nlm.nih.gov/39826466 $y Pubmed
910    __
$a ABA008 $b sig $c sign $y - $z 0
990    __
$a 20250415 $b ABA008
991    __
$a 20250429135138 $b ABA008
999    __
$a ok $b bmc $g 2311413 $s 1247108
BAS    __
$a 3
BAS    __
$a PreBMC-MEDLINE
BMC    __
$a 2025 $b 130 $c - $d 104885 $e 20250117 $i 1724-191X $m Physica medica $n Phys Med $x MED00167391
LZP    __
$a Pubmed-20250415

Najít záznam

Citační ukazatele

Nahrávání dat ...

Možnosti archivace

Nahrávání dat ...