| Literature DB >> 24132177 |
Hrant Yeritsyan1, Aram Sahakyan, Vachagan Harutyunyan, Sergey Nikoghosyan, Eleonora Hakhverdyan, Norair Grigoryan, Aghasi Hovhannisyan, Vovik Atoyan, Yeghis Keheyan, Christopher Rhodes.
Abstract
There have been comparatively few investigations reported of radiation effects in zeolites, although it is known that these materials may be modified substantially by exposure to ionizing radiation. Thus, by exposure to γ-rays or high-energy particles, the charge states of atoms may be changed so to create, and accumulate, lattice point defects, and to form structurally disordered regions. Such a technique may permit the creation, in a controlled fashion, of additionally useful properties of the material while preserving its essential stoichiometry and structure. Accordingly, we present an application, in which the cation-exchange capacity of a natural zeolite (clinoptilolite) is substantially enhanced, for the treatment/decontamination of water contaminated with radionuclides e.g. (134)Cs, (137)Cs and (90)Sr, by its exposure to high-energy (8 MeV) electrons, and to different total doses.Entities:
Year: 2013 PMID: 24132177 PMCID: PMC3798008 DOI: 10.1038/srep02900
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Schematic diagram for application of natural zeolite in public economy.
General zeolite properties
| Property | Range |
|---|---|
| Channels | 2.2–8 Å |
| Cavities | 6.6–11.8 Å |
| Thermal stability | 500–1.000°C |
| Ion-exchange capacity | Up to 700 milliequivalents/100 g |
| Surface area | Up to 900 m2/g |
| Water capacity | <1 to ~ 25 wt.% |
| Water affinity | Hydrophilic to hydrophobic |
Figure 2Automatic cleaning installation of radioactive waste water from nuclear reactor.
Water cleaning scheme – 3 cycles thorough column 1 (natural clinoptilolite)
| Radioactivity (Rad.) | ||||||
|---|---|---|---|---|---|---|
| Nuclide | Energy keV | Intensity | error% | Ci/l | [Bq/L] | Rad. reduction factor, 0/n |
| 662 | 3.55 × 101 | 3 | 7.84 × 10−7 | 29030 | ||
| 796 | 1.84 × 101 | 4 | 6.49 × 10−7 | 24060 | ||
| 1173 | 1.22 × 100 | 6.5 | 1.3 × 10−7 | 4720 | ||
| 662 | 1.47 × 100 | 6 | 0.23 × 10−7 | 860 | 33.7 | |
| 796 | 1.83 × 10−1 | 6 | 0.12 × 10−7 | 474 | 50.7 | |
| 1173 | 2.3 × 10−1 | 9 | 0.14 × 10−7 | 535 | 8.82 | |
| 662 | 1.12 × 100 | 7 | 0.16 × 10−7 | 611 | 47.5 | |
| 796 | 2.09 × 10−1 | 6 | 0.11 × 10−7 | 397 | 60.6 | |
| 1173 | 2.29 × 10−1 | 11 | 0.14 × 10−7 | 535 | 8.82 | |
| 662 | 9.27 × 10−1 | 8 | 0.11 × 10−7 | 405 | 71.7 | |
| 796 | 1.68 × 10−1 | 10 | 0.086 × 10−7 | 320 | 75.2 | |
| 1173 | 2.26 × 10−1 | 9 | 0.14 × 10−7 | 535 | 8.82 | |
Water cleaning scheme – 8 cycles thorough columns 1,2,3 consequently
| Radioactivity (Rad.) | ||||||
|---|---|---|---|---|---|---|
| Nuclide | Energy keV | Intensity | error% | Ci/L | [Bq/L] | Rad. reduction factor 0/n |
| 662 | 3.19 × 101 | 4 | 14.46 × 10−7 | 54390 | ||
| 796 | 2.58 × 101 | 6 | 13.26 × 10−7 | 49050 | ||
| 1173 | 1.74 × 100 | 8 | 1.09 × 10−7 | 4051 | ||
| 662 | 3.89 × 10−1 | 9 | 0.06 × 10−7 | 233 | 233 | |
| 796 | 4.8 × 10−2 | 14 | 0.024 × 10−7 | 91 | 539 | |
| 1173 | 7.33 × 10−2 | 15 | 0.046 × 10−7 | 170 | 23.8 | |
| 662 | 2.14 × 10−1 | 14 | 0.03 × 10−7 | 112 | 485 | |
| 796 | 3.01 × 10−2 | 10 | 0.015 × 10−7 | 57 | 860 | |
| 1173 | 7.8 × 10−2 | 12 | 0.05 × 10−7 | 181 | 22.4 | |
| 662 | 2.86 × 10−1 | 9 | 0.015 × 10−7 | 56 | 971 | |
| 796 | 1.65 × 10−2 | 11 | 0.009 × 10−7 | 30 | 1635 | |
| 1173 | 6.78 × 10−2 | 16 | 0.042 × 10−7 | 158 | 25.6 | |
| 662 | 1.84 × 10−1 | 17 | 0.019 × 10−7 | 71 | 766 | |
| 796 | 1.68 × 10−2 | 12 | 0.009 × 10−7 | 32 | 153.2 | |
| 1173 | 5.68 × 10−2 | 14 | 0.036 × 10−7 | 132 | 30.7 | |
| 662 | 1.97 × 10−1 | 16 | 0.018 × 10−7 | 65 | 837 | |
| 796 | 1.49 × 10−2 | 14 | 0.0075 × 10−7 | 28 | 1751.8 | |
| 1173 | 8.67 × 10−2 | 16 | 0.054 × 10−7 | 201 | 20.15 | |
| 662 | 1.95 × 10−1 | 15 | 0.0181 × 10−7 | 67 | 811 | |
| 796 | 1.51 × 10−2 | 14 | 0.009 × 10−7 | 32 | 1532.8 | |
| 1173 | 8.527 × 10−2 | 17 | 0.067 × 10−7 | 190 | 21.3 | |
| 662 | 1.71 × 10−1 | 14 | 0.02 × 10−7 | 76 | 715 | |
| 796 | 1.9 × 10−2 | 17 | 0.01 × 10−7 | 37 | 1325 | |
| 1173 | 8.0 × 10−2 | 16 | 0.050 × 10−7 | 192 | 21.1 | |
| 662 | 1.62 × 10−1 | 13 | 0.002 × 10−7 | 72 | 755 | |
| 796 | 1.87 × 10−2 | 15 | 0.0096 × 10−7 | 35 | 1401 | |
| 1173 | 9.62 × 10−2 | 18 | 0.058 × 10−7 | 217 | 18.7 | |
Figure 3Cleaning dynamics of 137Cs (a) and 134Cs (b) thorough columns 1, 2, 3 connected in sequence (water specific activity, Bq/L).
Figure 4Reduction of waste water radioactivity from ANPP depending on clinoptilolite sorbent electron irradiation processing degree.
Figure 5Electron irradiation dose dependence of natural clinoptilolite dielectric constant ε′ for some frequencies of the electric field.
Figure 6Electron irradiation dose dependence of the relative intensity of an absorption band at λ = 1.91 μm for the chemically treated and raw samples: 1 - treated by CH3COOH; 2-raw zeolite (clinoptilolite); 3 - treated by NH4Cl.