Evaluation of Particle Properties of MgO/TiO<sub>2</sub> Material by Monte Carlo Simulation Method — Oak Academic Publishing
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Evaluation of Particle Properties of MgO/TiO<sub>2</sub> Material by Monte Carlo Simulation Method
Physics Pedagogical Unit, Laboratory of Environmental Science and Technology, University Jean Lorougnon Guédé, Daloa, Côte d’Ivoire
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Department of Science and Technology, University Alassane Ouattara, Bouaké, Côte d’Ivoire
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Laboratory of Fundamental and Applied Physics, University Nangui Abrogoua, Abidjan, Côte d’Ivoire
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Department of Medical Physics, University of Trieste and International Centre for Theoretical Physics (ICTP), Trieste, Italy
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Department of Mathematics, Physics and Chemistry, UFR Biological Sciences, University Peleforo Gon Coulibaly, Korhogo, Côte d’Ivoire
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Nuclear Physics and Radiation Protection Team, Laboratory of Material Sciences Environment and Solar Energy, University Felix Houphouet-Boigny, Abidjan, Côte d’Ivoire
1 Physics Pedagogical Unit, Laboratory of Environmental Science and Technology, University Jean Lorougnon Guédé, Daloa, Côte d’Ivoire
2 Department of Science and Technology, University Alassane Ouattara, Bouaké, Côte d’Ivoire
3 Laboratory of Fundamental and Applied Physics, University Nangui Abrogoua, Abidjan, Côte d’Ivoire
4 Department of Medical Physics, University of Trieste and International Centre for Theoretical Physics (ICTP), Trieste, Italy
5 Department of Mathematics, Physics and Chemistry, UFR Biological Sciences, University Peleforo Gon Coulibaly, Korhogo, Côte d’Ivoire
6 Nuclear Physics and Radiation Protection Team, Laboratory of Material Sciences Environment and Solar Energy, University Felix Houphouet-Boigny, Abidjan, Côte d’Ivoire
The simulation by the Monte Carlo method executed by the software PyPENELOPE proved effective to specify the particle propagation characteristics by calculating the absorption fractions, backscattering and transmission of electrons and secondary photons under the incidence of 0.5 to 20 KeV range of primary electrons. More than 99.9% of the primary electrons were transmitted in the 125 nm thick MgO/TiO 2 material at 20 KeV. This occurred because several interactions took place in the transmitted primary irradiation such as characteristic, fluorescence, and bremsstrahlung produced when of the occupation of the KL3, KL2, KM3, and KM2 shell and sub-shell of titanium and magnesium which are the elements with a high atomic number in the material. The transmission particle characteristic of this material is therefore an indicator capable of improving the electrical performance and properties of the sensor.
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