| Literature DB >> 35516247 |
Lingyu Wang1, Peng Chen2, Xiuting Dong2, Wen Zhang2, Song Zhao2, Songtao Xiao1, Yinggen Ouyang1.
Abstract
The removal of radioiodine from the exhaust gas streams produced in spent fuel reprocessing plants is of paramount importance for the nuclear fuel cycle's security. Here, millimeter-sized poly(vinylidene fluoride) (PVDF) composites containing zirconium-based metal-organic frameworks, MOF-808, were synthesized by a facile phase inversion method to adsorb the volatile iodine. MOF-808@PVDF composites have inherited the crystallinity and pore accessibility of MOF-808, as well as its outstanding iodine capture performance. The MOF-808@PVDF composite beads containing 70 wt% MOFs, exhibited ultrahigh iodine adsorption capacity, 1.42 g g-1 at 80 °C, much higher than other millimeter-sized adsorbents reported in the literature. Raman mapping suggests that the negative iodine ions were formed at the early stage of iodine adsorption, while the close-packed iodine molecules were subsequently trapped in the frames. Using dynamic adsorption, the influences of iodine concentration, operating temperature and humidity were analyzed to evaluate its application potential in industrial conditions. The iodine adsorption capacity could reach 1.36 g g-1 at 80 °C, 100 °C and 120 °C in flow gas. And the elevated temperature (120 °C) is beneficial to accelerating the mass transfer of iodine vapor, as well as slightly inhibiting the competitive adsorption of water molecules under humidity. Besides, only one-third of the loaded iodine was released in nitrogen purging after saturated adsorption. The remaining majority was trapped firmly by the beads due to their strong interactions with the frameworks. This work highlights the millimeter-sized MOF-808@polymer composite beads with ultrahigh iodine adsorption capacity, providing experimental references for their application in radioiodine removal from hot and moist streams. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35516247 PMCID: PMC9058509 DOI: 10.1039/d0ra08741f
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Fig. 1(a) Structural representation of MOF-808; (b) TEM and (c) SEM images of MOF-808; (d) scheme of the fabrication of MOF-808 beads; (e) PXRD patterns of MOF-808 and 808-PVDFx; (f) outside surface and (g) cross-section SEM images of 808-PVDF0.7.
Fig. 2SEM images of 808-PVDFx and their EDS elemental mapping images. Red: Zr, blue: O; yellow: F.
Fig. 3(a) TGA profiles, (b) FTIR spectra and (c) N2 adsorption–desorption isotherms with pore size distributions of MOF-808 and 808-PVDFx beads.
Fig. 4Adsorption curves for MOF-808 and 808-PVDFx beads at 80 °C in saturated iodine vapor with (a) 0% RH and (b) 18% RH at different time.
Summary of iodine adsorption with millimeter-sized beads/pellets
| Beads/pellets | Size (mm) | Specific surface area (m2 g−1) | Temperature (°C) | Adsorbent weight (percent) | Equilibrium (time) | Adsorption capacity (mg g−1) |
|---|---|---|---|---|---|---|
| HKUST-@PVDF[ | 1–3 | 1100 | 75 | 60% | 6 h | 225 |
| HKUST-1@PES[ | 1–3 | 1250 | 75 | 70% | 6 h | 376 |
| HKUST-1@PEI[ | 1–3 | 990 | 75 | 60% | 6 h | 348 |
| Cu-BTC@PES[ | 3.5 | 237 | 75 | 71.9% | 75 h | 639 |
| SnS50@PNA[ | 3 | 23 | 25 | 50% | 6.9 day | 1148 |
| NAS-11a-Ag0 (ref. | 1–5 | 146 | 150 | 42% Ag | 20 h | 555 |
| MgO pellet[ | 3 | 83.1 | 25 | 100% | — | 137 |
| ZIF-8 pellet[ |
| 1837 | 77 | 100% | — | 1250 |
| Ag/13Xcomm zeolite[ | 0.84 | 369 | 25 | 35% Ag | — | 280 |
| 808-PVDF0.7 | 2 | 668 | 80 | 70% | 24 h | 1420 |
Fig. 5Raman mapping of area integral intensities in the range of (a) 70–130 nm and (b) 130–190 nm for 808-PVDF0.7–5% I. (c) The typical Raman spectra for 808-PVDF0.7–5% I and 808-PVDF0.7–50% I. Raman mapping of area integral intensities in the range of (d) 70–130 nm and (e) 130–190 nm for 808-PVDF0.7–50% I, and (f) the ratio mapping for (d)/(e).
Fig. 6(a) Scheme of the dynamic iodine adsorption operation. Uptake curves of iodine adsorption on 808-PVDF0.7 at (b) different iodine concentrations and (c) different temperatures. (d) Iodine adsorption on regenerated 808-PVDF0.7 beads for three recycles. Uptake curves on 808-PVDF0.7 at (e) 80 °C and (f) 120 °C under humidity (gas flow rate = 400 mL min−1).