TY - JOUR A1 - Li, Xiangkun A1 - Amirkhanyan, Zohrab A1 - Grebinyk, Anna A1 - Gross, Matthias A1 - Komar, Yuliia A1 - Riemer, Felix A1 - Asoyan, Aida A1 - Boonpornprasert, Prach A1 - Borchert, Paul A1 - Davtyan, Hakob A1 - Dmytriiev, Dmytro A1 - Frohme, Marcus A1 - Hoffmann, Andreas A1 - Krasilnikov, Mikhail A1 - Loisch, Gregor A1 - Lotfi, Zahra A1 - Müller, Frieder A1 - Schmitz, Michael A1 - Obier, Frank A1 - Oppelt, Anne A1 - Philipp, Sebastian A1 - Richard, Christopher A1 - Vashchenko, Grygorii A1 - Villani, Daniel A1 - Worm, Steven A1 - Stephan, Frank T1 - Demonstration of ultra-high dose rate electron irradiation at FLASHlab@PITZ JF - Physics in Medicine & Biology N2 - Objective. The photo injector test facility at DESY in Zeuthen (PITZ) is building up an R&D platform, known as FLASHlab@PITZ, for systematically studying the FLASH effect in cancer treatment with its high-brightness electron beams, which can provide a uniquely large dose parameter range for radiation experiments. In this paper, we demonstrate the capabilities by experiments with a reduced parameter range on a startup beamline and study the potential performance of the full beamline by simulations. Approach. To measure the dose, Gafchromic films are installed both in front of and after the samples; Monte Carlo simulations are conducted to predict the dose distribution during beam preparation and help understand the dose distribution inside the sample. Plasmid DNA is irradiated under various doses at conventional and ultra-high dose rate (UHDR) to study the DNA damage by radiations. Start-to-end simulations are performed to verify the performance of the full beamline. Main results. On the startup beamline, reproducible irradiation has been established with optimized electron beams and the delivered dose distributions have been measured with Gafchromic films and compared to FLUKA simulations. The functionality of this setup has been further demonstrated in biochemical experiments at conventional dose rate of 0.05 Gy s−1 and UHDR of several 105 Gy s−1 and a varying dose up to 60 Gy, with the UHDR experiments finished within a single RF pulse (less than 1 millisecond); the observed conformation yields of the irradiated plasmid DNA revealed its dose-dependent radiation damage. The upgrade to the full FLASHlab@PITZ beamline is justified by simulations with homogeneous radiation fields generated by both pencil beam scanning and scattering beams. Significance. With the demonstration of UHDR irradiation and the simulated performance of the new beamline, FLASHlab@PITZ will serve as a powerful platform for studying the FLASH effects in cancer treatment. KW - ultra-high dose rate KW - FLASH effect KW - electron beams KW - FLASHlab@PITZ Y1 - 2025 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-20092 VL - 70 IS - 5 PB - Institute of Physics Publishing (IOP) ER - TY - CHAP A1 - Li, Xiangkun A1 - Amirkhanyan, Zohrab A1 - Aftab, Namra A1 - Boonpornprasert, Prach A1 - Dmytriiev, Dmytro A1 - Frohme, Marcus A1 - Georgiev, Georgi A1 - Grebinyk, Anna A1 - Gross, Matthias A1 - Hoffmann, Andreas A1 - Komar, Yuliia A1 - Krasilnikov, Mikhail A1 - Loisch, Gregor A1 - Oppelt, Anne A1 - Richard, Christopher A1 - Riemer, F. A1 - Philipp, Sebastian A1 - Schmitz, Michael A1 - Müller, Frieder A1 - Obier, Frank A1 - Vashchenko, Grygorii A1 - Worm, Steven A1 - Stephan, Frank T1 - Overview of FLASHlab@PITZ: the new R&D platform for FLASH radiation therapy and radiation biology T2 - Journal of Physics: Conference Series, Volume 2687, Applications of Accelerators, Technology Transfer and Industrial Relations and Outreach N2 - An R&D platform for electron FLASH radiation therapy and radiation biology is being prepared at the Photo Injector Test facility at DESY in Zeuthen (FLASHlab@PITZ). This platform is based on the unique beam parameters available at PITZ: ps scale electron bunches of up to 22 MeV with up to 5 nC bunch charge at MHz bunch repetition rate in bunch trains of up to 1 ms in length repeating at 1 to 10 Hz. It works together with the Technical University of Applied Sciences Wildau (TH Wildau) as partner in close vicinity for the biological resources. A startup beamline has been installed to allow dosimetry studies and irradiation experiments on chemical, biochemical and biological samples after a 60-degree dispersive arm. The measured dose and dose rates under different beam conditions and first experimental results will be reported in this paper. In addition, a dedicated beamline for FLASHlab@PITZhas been designed for better control of the high brightness electron beams. This includes a dogleg to translate the beam and a 2D kicker system to scan the tiny beam focused by quadrupoles across the samples within less than 1 ms. Simulation studies will be presented to demonstrate the extremely flexible dose parameters with various irradiation options for electron FLASH radiation therapy and radiation biology studies. Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:526-opus4-18474 VL - 2687 PB - Institute of Physics Publishing (IOP) ER -