Influence of the size of nano- and microparticles and photon energy on mass attenuation coefficients of bismuth–silicon shields in diagnostic radiology

Radiological Physics and Technology - Tập 12 - Trang 325-334 - 2019
Reza Malekzadeh1,2,3, Parinaz Mehnati2, Mohammad Yousefi Sooteh2, Asghar Mesbahi4,5
1Medical Radiation Sciences Research Team, Tabriz University of Medical Sciences, Tabriz, Iran
2Department of Medical Physics, School of Medicine, Tabriz University of Medical Sciences, Tabriz, Iran
3Student Research Committee, Tabriz University of Medical Sciences, Tabriz, Iran
4Molecular Medicine Research Center, Tabriz University of Medical Sciences, Tabriz, Iran
5Medical Physics Department, Medical School, Tabriz University of Medical Sciences, Tabriz, Iran

Tóm tắt

Recent studies have shown that the particle size of the shielding material and photon energy has significant effects on the efficiency of radiation-shielding materials. The purpose of the current study was to investigate the shielding properties of the bismuth–silicon (Bi–Si) composite containing varying percentages of micro- and nano-sized Bi particles for low-energy X-rays. Radiation composite shields composed of nano- and micro-sized Bi particles in Si-based matrix were constructed. The mass attenuation coefficients of the designed shields were experimentally assessed for diagnostic radiology energy range. In addition, the mass attenuation coefficients of the composite were comprehensively investigated using the MCNPX Monte Carlo (MC) code and XCOM. The X-ray attenuation for two different micro-sized Bi composites of radii of 50 µm and 0.50 µm showed enhancement in the range of 37–79% and 5–24%, respectively, for mono-energy photons (60–150 keV). Furthermore, the experimental and MC results indicated that nano-structured composites had higher photon attenuation properties (approximately 11–18%) than those of micro-sized samples for poly-energy X-ray photons. The amount of radiation attenuation for lower energies was more than that of higher energies. Thus, it was found that the shielding properties of composites were considerably strengthened by adding Bi nano-particles for lower energy photons.

Tài liệu tham khảo

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