| Literature DB >> 35407736 |
Khalid I Hussein1,2, Aref M Al-Syadi3,4, Mohammed S Alqahtani1,5, Nehal Elkhoshkhany6,7, Hamed Algarni8,9, Manuela Reben10, El Sayed Yousef8,9.
Abstract
The synthesized glass system with a composition of (80-x) TeO2-10P2O5-10Nb2O5-xKCl mol% (where x = 5, 10, 15, 20, and 25) was successfully fabricated. The density (ρ) and molar volume (Vm) have been calculated. The investigated glasses were characterized using different analysis methods (differential thermal analysis (DTA) and UV-VIS-NIR spectroscopy). The radiation shielding effectiveness of the synthesized glass system was evaluated using different shielding parameters, such as mass and linear attenuation coefficients (MAC, LAC), half-value layer (HVL), mean free path (MFP), effective atomic number (Zeff), and effective electron number (Neff). The results showed that with the increasing potassium chloride (KCl) concentration and decreasing tellurium oxide (TeO2) concentration, the density, refractive index, Urbach energy (Eu), and glass transition temperature (Tg) decreased, while the optical energy gap (Eopt) and thermal stability increased. As the KCl concentration increases, the values of MAC, LAC, and Zeff increase in the following order: TPNK5 % > TPNK10 % > TPNK15 % > TPNK20 % > TPNK25 %. Additionally, the shielding effectiveness of TPNK glass system showed good performance compared with some standard materials. The synthesized glass with a minimum KCl content has both good shielding effectiveness and good optical properties, in addition to reasonable thermal stability, which makes it suitable for shielding and optical applications.Entities:
Keywords: DTA; optical properties; potassium chloride; shielding parameters; tellurite glasses; thermal characteristics
Year: 2022 PMID: 35407736 PMCID: PMC8999869 DOI: 10.3390/ma15072403
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Theoretical and measured density (ρ), molar volume (Vm), number of bond per unit volume (Nb), and average bond stretching force constant (F) of TPNK glass system.
| Sample Code | Composition | Theoretical ρ | Experimental ρ | Vm | Nb × 1028 | F |
|---|---|---|---|---|---|---|
| TPNK1 | 75TeO2-10P2O5-10Nb2O5-5KCl | 4.9125 | 5.0507 ± 0.054 | 35.322 | 7.50 | 244 |
| TPNK2 | 70TeO2-10P2O5-10Nb2O5-10KCl | 4.8152 | 4.8664 ± 0.055 | 35.785 | 7.74 | 229 |
| TPNK3 | 65TeO2-10P2O5-10Nb2O5-15KCl | 4.7129 | 4.6821 ± 0.055 | 36.286 | 7.97 | 215 |
| TPNK4 | 60TeO2-10P2O5-10Nb2O5-20KCl | 4.6055 | 4.4978 ± 0.054 | 36.827 | 8.18 | 202 |
| TPNK5 | 55TeO2-10P2O5-10Nb2O5-25KCl | 4.4923 | 4.3135 ± 0.055 | 37.415 | 8.37 | 190 |
Urbach energy (Eu), indirect optical band gap (Eopt), leaner refractive index (n), molar refractivity (Rm), molar polarizability (αm), and metallization criterion (M) of TPNK glass system.
| Sample Code | Eu (eV) | Eopt (eV) | N | Rm (Mol−1) | αm (Å−3) | M |
|---|---|---|---|---|---|---|
| TPNK1 | 0.211 | 2.71 | 2.48 | 22.32 | 8.85 | 0.368 |
| TPNK2 | 0.177 | 2.75 | 2.47 | 22.52 | 8.93 | 0.371 |
| TPNK3 | 0.147 | 2.80 | 2.457 | 22.71 | 9.01 | 0.374 |
| TPNK4 | 0.146 | 2.83 | 2.44 | 22.97 | 9.11 | 0.376 |
| TPNK5 | 0.144 | 2.87 | 2.43 | 23.24 | 9.22 | 0.379 |
Figure 1Dependence of glass density (ρ) and molar volume (Vm) on the glass composition x.
Figure 2DTA profiles of TPNK glass system at a heating rate of 15 °C/min.
The glass transformation temperature (Tg), onset crystallization temperatures (Tc), peak crystallization temperature (Tp), thermal stability factor (∆T), Hruby’s coefficient (H), and parameter (KSP) of TPNK glass system.
| Sample Code | Tg (°C) | Tc (°C) | Tp (°C) | ∆T (°C) | H | KSP (°C) |
|---|---|---|---|---|---|---|
| TPNK1 | 413 | 636 | 671 | 223 | 0.54 | 21.86 |
| TPNK2 | 402 | 615 | 660 | 213 | 0.53 | 28.88 |
| TPNK3 | 357 | 603 | 642 | 246 | 0.69 | 31.13 |
| TPNK4 | 345 | 575 | 616 | 230 | 0.67 | 32.21 |
| TPNK5 | 338 | 620 | 634 | 282 | 0.83 | 12.26 |
Figure 3Dependence of the bonds per unit volume (Nb) and the average bond stretching force constant (F) on the KCl content.
Figure 4UV–VIS–NIR absorbance spectra of TPNK glass system.
Figure 5The ln (α) as a function of hν of TPNK glass system.
Figure 6Tauc’s plot (αhν)1/2 vs. hν of TPNK glass system.
Figure 7The variation of optical band gap (Eopt) and leaner refractive index (n) as a function of the KCl content.
Figure 8Radiation shielding parameters of TPNK system. (a) MAC; (b) LAC.
Figure 9Radiation shielding parameters of TPNK system. (a) HVL; (b) TVL; (c) MFP.
Figure 10Shielding parameters of TPNK system compared with the standard materials. (a) HVL; (b) MPF.
Figure 11The radiation shielding parameters. (a) Effective atomic number (Zeff); (b) effective electron number (Neff).