Modeling of Proton Interaction with Organic Polymers: Implications for Cancer Therapy and Beyond

Fuente: arXiv
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Autores principales: Matias, F., Silva, T. F., Koval, N. E., Pereira, J. J. N., Antunes, P. C. G., Siqueira, P. T. D., Tabacniks, M. H., Yoriyaz, H., Shorto, J. M. B., Grande, P. L.
Formato: Preprint
Publicado: 2024
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author Matias, F.
Silva, T. F.
Koval, N. E.
Pereira, J. J. N.
Antunes, P. C. G.
Siqueira, P. T. D.
Tabacniks, M. H.
Yoriyaz, H.
Shorto, J. M. B.
Grande, P. L.
author_facet Matias, F.
Silva, T. F.
Koval, N. E.
Pereira, J. J. N.
Antunes, P. C. G.
Siqueira, P. T. D.
Tabacniks, M. H.
Yoriyaz, H.
Shorto, J. M. B.
Grande, P. L.
contents This comprehensive study delves into the intricate interplay between protons and organic polymers, offering insights into proton therapy in cancer treatment. Focusing on the influence of the spatial electron density distribution on stopping power estimates, we employed time-dependent density functional theory (TDDFT), coupled with the Penn method. Surprisingly, the assumption of electron density homogeneity in polymers is fundamentally flawed, resulting in an overestimation of stopping power values at energies below 2 MeV, approximately. Moreover, Bragg's rule application in specific compounds exhibited significant deviations from experimental data in the Bragg peak region, challenging established norms.
format Preprint
id arxiv_https___arxiv_org_abs_2401_02853
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Modeling of Proton Interaction with Organic Polymers: Implications for Cancer Therapy and Beyond
Matias, F.
Silva, T. F.
Koval, N. E.
Pereira, J. J. N.
Antunes, P. C. G.
Siqueira, P. T. D.
Tabacniks, M. H.
Yoriyaz, H.
Shorto, J. M. B.
Grande, P. L.
Atomic Physics
This comprehensive study delves into the intricate interplay between protons and organic polymers, offering insights into proton therapy in cancer treatment. Focusing on the influence of the spatial electron density distribution on stopping power estimates, we employed time-dependent density functional theory (TDDFT), coupled with the Penn method. Surprisingly, the assumption of electron density homogeneity in polymers is fundamentally flawed, resulting in an overestimation of stopping power values at energies below 2 MeV, approximately. Moreover, Bragg's rule application in specific compounds exhibited significant deviations from experimental data in the Bragg peak region, challenging established norms.
title Modeling of Proton Interaction with Organic Polymers: Implications for Cancer Therapy and Beyond
topic Atomic Physics
url https://arxiv.org/abs/2401.02853