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Energy Loss and Range Calculations for Alpha Particles in B-100 Bone and C-552 Air-Equivalent Plastic Materials

Year 2024, Volume: 19 Issue: 2, 175 - 183, 25.11.2024
https://doi.org/10.29233/sdufeffd.1523489

Abstract

The type of radiation that harms humans and living organisms is the ionizing type. In this type of radiation, radiation passing through the cell transfers energy to biological tissues and causes harmful biological effects along with chemical changes. Therefore, radiation exposure doses should be kept as low as possible and appropriate shielding materials should be used between radiation and living tissue. In this study, stopping power and range calculations of B-100 bone and C-552 air-equivalent plastic materials, which are International Commission on Radiation Units & Measurement (ICRU) materials, were performed for alpha particles in the energy range of 0.1 MeV - 10 MeV. The effective charge approach within the scope of Bethe-Bloch theory and Bohr stripping criterion was used in collision stopping power calculations. The Continuous Slowing-Down Approximation (CSDA) method and the 3/8 Simpson approximation were chosen for range calculations. The error rates were found to be less than 10% when the results were compared with the available literature data.

References

  • J. Man, Y. Shen, Y. Song, K. Yang, P. Pei and L. Hu, “Biomaterials-mediated radiation-induced diseases treatment and radiation protection”, Journal of Controlled Release, 370, 318-338, 2024.
  • ICRU, Stopping Powers and Ranges for Protons and Alpha Particles, in ICRU Report 49, 1993.
  • J. F. Ziegler, J. P. Biersack and M. D. Ziegler, SRIM, the Stopping and Range of Ions in Matter. 2013: SRIM Company.
  • T. Koga, S. Yamamoto, T. Shimazaki and H. Tatewaki, “Contracted Gaussian-type basis functions revisited. IV. Atoms Rb to Xe”, Theoretical Chemistry Accounts, 108(1), 41-45, 2002.
  • M. Usta, M. Ç. Tufan, G. Aydın and A. Bozkurt, “Stopping power and dose calculations with analytical and Monte Carlo methods for protons and prompt gamma range verification”, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 897, 106-113, 2018.
  • H. Bethe, “Zur theorie des durchgangs schneller korpuskularstrahlen durch materie”, Annalen der Physik, 397(3), 325-400, 1930.
  • N. Bohr, “Scattering and stopping of fission fragments”, Physical Review, 58(7), 654-655, 1940.
  • M. Usta, “The calculation of stopping power and range for radium, thorium and uranium using new electronic potential energy function”, Applied Radiation and Isotopes, 152, 193-199, 2019.
  • R. Weber, B. Hovda, G. Schoendorff and A. K. Wilson, “Behavior of the Sapporo-nZP-2012 basis set family”, Chemical Physics Letters, 637, 120-126, 2015.
  • R. Cabrera-Trujillo, S. A. Cruz, J. Oddershede and J. R. Sabin, “Bethe theory of stopping incorporating electronic excitations of partially stripped projectiles”, Physical Review A, 55(4), 2864-2872, 1997.
  • M. C. Tufan, A. Koroglu and H. Gumus, “Stopping power calculations for partially stripped projectiles in high energy region”, Acta Physica Polonica A, 107(3), 459-472, 2005.
  • M. Ç. Tufan, Ö. Kabadayı and H. Gümüş, “Stopping power calculations of molecules for swift projectiles”, Radiation Physics and Chemistry, 76(3), 631-635, 2007.
  • M. Usta and M. Ç. Tufan, “Stopping power and range calculations in human tissues by using the Hartree-Fock-Roothaan wave functions”, Radiation Physics and Chemistry, 140(Supplement C), 43-50, 2017.
  • M. Usta, “Continuous slowing-down approximation ranges of biological materials for 0.05–10 MeV alpha particles by using different approach methods”, Applied Radiation and Isotopes, 178, 109951, 2021.
Year 2024, Volume: 19 Issue: 2, 175 - 183, 25.11.2024
https://doi.org/10.29233/sdufeffd.1523489

Abstract

References

  • J. Man, Y. Shen, Y. Song, K. Yang, P. Pei and L. Hu, “Biomaterials-mediated radiation-induced diseases treatment and radiation protection”, Journal of Controlled Release, 370, 318-338, 2024.
  • ICRU, Stopping Powers and Ranges for Protons and Alpha Particles, in ICRU Report 49, 1993.
  • J. F. Ziegler, J. P. Biersack and M. D. Ziegler, SRIM, the Stopping and Range of Ions in Matter. 2013: SRIM Company.
  • T. Koga, S. Yamamoto, T. Shimazaki and H. Tatewaki, “Contracted Gaussian-type basis functions revisited. IV. Atoms Rb to Xe”, Theoretical Chemistry Accounts, 108(1), 41-45, 2002.
  • M. Usta, M. Ç. Tufan, G. Aydın and A. Bozkurt, “Stopping power and dose calculations with analytical and Monte Carlo methods for protons and prompt gamma range verification”, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 897, 106-113, 2018.
  • H. Bethe, “Zur theorie des durchgangs schneller korpuskularstrahlen durch materie”, Annalen der Physik, 397(3), 325-400, 1930.
  • N. Bohr, “Scattering and stopping of fission fragments”, Physical Review, 58(7), 654-655, 1940.
  • M. Usta, “The calculation of stopping power and range for radium, thorium and uranium using new electronic potential energy function”, Applied Radiation and Isotopes, 152, 193-199, 2019.
  • R. Weber, B. Hovda, G. Schoendorff and A. K. Wilson, “Behavior of the Sapporo-nZP-2012 basis set family”, Chemical Physics Letters, 637, 120-126, 2015.
  • R. Cabrera-Trujillo, S. A. Cruz, J. Oddershede and J. R. Sabin, “Bethe theory of stopping incorporating electronic excitations of partially stripped projectiles”, Physical Review A, 55(4), 2864-2872, 1997.
  • M. C. Tufan, A. Koroglu and H. Gumus, “Stopping power calculations for partially stripped projectiles in high energy region”, Acta Physica Polonica A, 107(3), 459-472, 2005.
  • M. Ç. Tufan, Ö. Kabadayı and H. Gümüş, “Stopping power calculations of molecules for swift projectiles”, Radiation Physics and Chemistry, 76(3), 631-635, 2007.
  • M. Usta and M. Ç. Tufan, “Stopping power and range calculations in human tissues by using the Hartree-Fock-Roothaan wave functions”, Radiation Physics and Chemistry, 140(Supplement C), 43-50, 2017.
  • M. Usta, “Continuous slowing-down approximation ranges of biological materials for 0.05–10 MeV alpha particles by using different approach methods”, Applied Radiation and Isotopes, 178, 109951, 2021.
There are 14 citations in total.

Details

Primary Language English
Subjects Radiophysics
Journal Section Articles
Authors

Metin Usta 0000-0002-7896-397X

Publication Date November 25, 2024
Submission Date July 27, 2024
Acceptance Date November 7, 2024
Published in Issue Year 2024 Volume: 19 Issue: 2

Cite

IEEE M. Usta, “Energy Loss and Range Calculations for Alpha Particles in B-100 Bone and C-552 Air-Equivalent Plastic Materials”, Süleyman Demirel University Faculty of Arts and Science Journal of Science, vol. 19, no. 2, pp. 175–183, 2024, doi: 10.29233/sdufeffd.1523489.