Momentum cooling can improve transmission rates for proton therapy
Author:
Publisher
Springer Science and Business Media LLC
Subject
General Physics and Astronomy
Link
https://www.nature.com/articles/s41567-023-02116-1.pdf
Reference5 articles.
1. Newhauser, W. D. & Zhang, R. The physics of proton therapy. Phys. Med. Biol. 60, R155 (2015). This review article covers the underlying physics principles behind proton therapy.
2. van Goethem, M. J., van der Meer, R., Reist, H. W. & Schippers, J. M. Geant4 simulations of proton beam transport through a carbon or beryllium degrader and following a beam line. Phys. Med. Biol. 54, 5831–5846 (2021). This paper explores transmission through a conventional ESS beamline.
3. Maradia, V. et al. Increase of the transmission and emittance acceptance through a cyclotron-based proton therapy gantry. Med. Phys. 49, 2183–2192 (2022). This paper presents a way to control a high-emittance beam in a proton-therapy beamline.
4. Vozenin, M. C., Bourhis, J. & Durante, M. Towards clinical translation of FLASH radiotherapy. Nat. Rev. Clin. Oncol. 19, 791–803 (2022). A review article that sets out the principles underlying FLASH radiotherapy.
5. Chang, J. Y. et al. Consensus guidelines for implementing pencil-beam scanning proton therapy for thoracic malignancies on behalf of the PTCOG Thoracic and Lymphoma Subcommittee. Int. J. Radiat. Oncol. Biol. Phys. 99, 41–50 (2017). A review article that presents the major challenges of pencil-beam scanning proton therapy in thoracic cancers.
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