Commissioning of a clinical pencil beam scanning proton therapy unit for ultrahigh dose rates (FLASH)
K. P. Nesteruk, M. Togno, M. Grossmann, A. J. Lomax, D. C. Weber, J., M. Schippers, S. Safai, D. Meer, and S. Psoroulas

TL;DR
This work details the adaptation and commissioning of a clinical proton therapy system for ultrahigh dose rate FLASH irradiation, enabling flexible, precise, and high-speed proton beam delivery for research purposes.
Contribution
The paper presents the development of a versatile proton FLASH irradiation platform capable of delivering a wide range of dose rates and field sizes with high precision.
Findings
Achieved peak dose rate of 9000 Gy/s at 3 mm depth
Enabled conformal and transmission irradiations with various field sizes
Maintained dose delivery precision within less than 1%
Abstract
Purpose: The purpose of this work was to provide a flexible platform for FLASH research with protons by adapting a former clinical pencil beam scanning gantry to irradiations with ultrahigh dose rates. Methods: PSI Gantry 1 treated patients until December 2018. We optimized the beamline parameters to transport the 250 MeV beam extracted from the PSI COMET accelerator to the treatment room, maximizing the transmission of beam intensity to the sample. We characterized a dose monitor on the gantry to ensure good control of the dose, delivered in spot-scanning mode. We characterized the beam for different dose rates and field sizes for transmission irradiations. We explored scanning possibilities in order to enable conformal irradiations or transmission irradiations of large targets (with transverse scanning). Results: We achieved a transmission of 86 % from the cyclotron to the treatment…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
