Enhanced optical and structural traits of irradiated lead borate glasses via Ce3+ and Dy3+ ions with studying Radiation shielding performance

被引:14
作者
Sallam, O. I. [1 ]
Rammah, Y. S. [2 ,3 ]
Nabil, Islam M. [4 ]
El-Seidy, Ahmed M. A. [5 ]
机构
[1] Egyptian Atom Energy Author EAEA, Natl Ctr Radiat Res & Technol, Radiat Chem Dept, Glass Lab, Cairo, Egypt
[2] Menoufia Univ, Fac Sci, Dept Phys, Menoufia 32511, Egypt
[3] Pharos Univ Alexandria, Canal El Mahmoudia St,Green Plaza Complex, Alexandria 21648, Egypt
[4] Fayoum Univ, Fac Sci, Phys Dept, Al Fayyum, Egypt
[5] Natl Res Ctr, Adv Mat Technol & Mineral Resources Res Inst, Inorgan Chem Dept, El-borough St,PO 12622, Cairo, Egypt
关键词
Lead borate glass; Dysprosium; Cerium; Radiation shielding; Optical properties; XPS; WHITE-LIGHT GENERATION; ENERGY-TRANSFER; GAMMA; LUMINESCENCE; SIMULATION; BEHAVIOR; LASER;
D O I
10.1038/s41598-024-73892-w
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Lead borate glass is the best radiation shielding glass when lead is in high concentration. However, it has low transparency after radiation exposure. Radiation decreases transparency due to chemical and physical changes in the glass matrix, such as creating or healing defects in the glass network. The addition of rare earth elements like cerium and dysprosium oxides to lead borate glasses can improve their transparency and durability as radiation shielding barriers. The newly manufactured glasses' optical absorption, structural, and radiation shielding properties were measured. The optical characteristics of the generated samples were examined to determine the effect of the cerium/dysprosium ratio on the structural alterations, specifically in the presence of bridging oxygen (BO) and non-bridging oxygen (NBO). Incorporating Ce3+ results in peaks at 195 nm for borate units, 225 nm for Ce3+, and a broadened peak at 393 nm due to overlapping peaks for Ce3+ and Ce4+ in the UV region. By adding Dy, multiple peaks are observed at 825, 902, 1095, 1275, and 1684 nm, corresponding to the transition from H-6(15/2) ground state to F-6(5/2), F-6(7/2), F-6(9/2), F-6(11/2), and H-6(11/2). The samples were also tested before and after exposure to gamma irradiation from a Co-60 source at a dose of 75 kGy to assess their stability against radiation. The energy gap value during irradiation shows decreased non-bridging oxygen. The energy gap difference before and after irradiation for the M4 sample shows higher NBO to BO conversion, reducing radiation damage and improving structural stability. Furthermore, X-ray photoelectron spectroscopy was utilized to get insight into the coordination chemistry of the created glass samples. The half-value layer (HVL), radiation protection efficiency (RPE), neutron removal cross-section (FRNCS), mean free path (MFP), mass attenuation coefficients (MAC), and effective atomic numbers (Z(ef)) of the glassy structure were calculated theoretically to assess its radiation shielding qualities. The linear attenuation coefficient order for the prepared samples was M1 > M2 > M3 > M4. The FRNCS values were 0.090, 0.083, 0.081, and 0.079 cm(-1) for samples M1, M2, M3, and M4, respectively.
引用
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页数:17
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