| Literature DB >> 35478782 |
Kankan Patra1, Biswajit Sadhu2, Arijit Sengupta3,4, C B Patil1, R K Mishra4,5, C P Kaushik4,5.
Abstract
Due to the long half-life of 137Cs (t 1/2 ∼ 30 years), the selective extraction of cesium (Cs) from high level liquid waste is of paramount importance in the back end of the nuclear fuel cycle to avoid long term surveillance of high radiotoxic waste. As 1,3-di-octyloxycalix[4]arene-crown-6 (CC6) is suggested to be a promising candidate for selective Cs extraction, the improvement in the Cs extraction efficiency by CC6 has been investigated through the optimization of the effect of dielectric media on the extraction process. The effects of the feed acid (HNO3, HCl, and HClO4) and the composition of the diluents for the ligand in the organic phase on the extraction efficiency of Cs have been investigated systematically. In 100% n-octanol medium, Cs is found to form a 1 : 1 ion-pair complex with CC6 (0.03 M) providing a very high distribution ratio of D Cs ∼ 22, suggesting n-octanol as the most suitable diluent for Cs extraction. No significant interference of other relevant cations such as Na, Mg and Sr was observed on the D Cs value in the optimized solvent system. Density functional theory (DFT) based calculations have been carried out to elucidate the reason of ionic selectivity and enhanced Cs extraction efficiency of CC6 in the studied diluent systems. In addition to the ionic size-based selectivity of the crown-6 cavity, the polarity of the organic solvent system, the hydration energy of the ion, and the relative reorganization of CC6 upon complexation with Cs are understood to have roles in achieving the enhanced efficiency for the extraction of Cs by the CC6 extractant in nitrobenzene medium. This journal is © The Royal Society of Chemistry.Entities:
Year: 2021 PMID: 35478782 PMCID: PMC9034044 DOI: 10.1039/d1ra02661e
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 3.361
Fig. 1Chemical formula (left panel) and geometry optimized structure (right panel) of 1,3-dioctyloxycalix[4]arene-crown-6 (CC6). In the optimized structure, the oxygen atoms of the crown cavity are presented in ball and stick model, other atoms are presented in wire frame (color code: C = tan; O = red; H = light grey).
Extraction dependency of cesium ion on using different solvent composition as the diluent. Organic phase: 0.03 M CC6 in different solvent compositions; aqueous phase: 5 M HNO3 spiked with 137Cs
| Serial no. | Solvent composition |
|
|---|---|---|
| 1 | 50% Iso-decyl alcohol + 50% dodecane | 7.43 |
| 2 | 75% Iso-decyl alcohol + 25% dodecane | 12.31 |
| 3 | 100% Iso-decyl alcohol | 19.69 |
| 4 | 100% | 21.79 |
Fig. 2Extraction dependency of cesium on the different acids (HNO3, HCl, HCIO4) concentration. Organic phase: 0.015 M CC6 in 100% n-octanol; aqueous phase: different concentration of acids (HNO3, HCl, HCIO4) spiked with 137Cs metal ions (triplicate measurements were done and the error is within ±5%).
Fig. 3Variation of DCs as a function of CC6 concentration. Organic phase: (0.003–0.03) M·CC6 + 100% n-octanol; aqueous phase: 5 M HNO3 spiked with 137Cs metal ions.
Fig. 4Dependence of the distribution ratio of Cs+ ion (DCs) on the interfering metal ion concentrations. Organic phase: 0.015 M CC6 in 100% n-octanol; aqueous phase: different concentration of metal ions (Na, Mg, Sr) from (0.1–3.0) M in 5 M HNO3 spiked with 137Cs metal ions. (Triplicate measurements were done and the error is within ±5%.)
Optimized structural parameters and thermodynamic parameters of [M·CC6] complexes. (M = Na+, Mg2+, Sr2+ and Cs+)a
| Complex | M–OCC6 (Å) | M–Carene | Δ |
| Δ |
|---|---|---|---|---|---|
| Na+·CC6 | 2.430, 2.447, 3.537, 3.613, 4.331, 4.346 | 2.770, 2.914 | −4.62 (+45.76) | −6.08 | +1.46 (+12.46) |
| Mg2+·CC6 | 2.083, 2.114, 2.163, 2.215, 3.679, 4.062 | 2.408, 5.604 | +31.24 (+86.57) | −3.58 | +34.83 (+90.16) |
| Sr2+·CC6 | 2.719, 2.628, 2.650, 2.698, 2.857, 4.869 | 3.119, 3.262 | −5.34 (+6.38) | −12.71 | +7.36 (+58.47) |
| Cs+·CC6 | 3.225, 3.244, 3.283, 3.315, 3.325, 3.381 | 3.443, 3.470 | −17.56 (−6.53) | −2.45 | −15.11 (−4.07) |
| Cs+·NO3−·CC6 | 3.151, 3.185, 3.332, 3.335, 3.502, 3.585 | 3.366, 3.479 | −22.21 (−18.44) | +0.75 | −22.97 (−19.19) |
Values in bracket correspond to dodecane solvent (dielectric constant = 2).
Distance between Cs+ and ortho-carbon of aromatic moiety.
Fig. 5Optimized structures of [Cs+·CC6] complex in the absence and presence of nitrate counter ion. Cs+ coordinated oxygen atoms are presented in ball and stick model; other atoms are presented in wire frame.
A comparative study on Cs+ extraction by crown ether in molecular diluents
| Ligand | Solvent composition | Metal : ligand ratio |
| Ref. |
|---|---|---|---|---|
| 1,3-Dioctyloxycalix[4]arene-crown-6 (CC6) |
| 1 : 1 | 21.67 | Present work |
| 1,3-Dioctyloxycalix[4]arene-crown-6 (CC6) | Isodecyl alcohol/ | 1 : 1 | 6.6 |
|
| Calix[4]arene-bis(crown-6) | Nitrobenzene | 1 : 1 | 5.20 |
|
| Calix[4]arene-bis(crown-6) | 1,2-Dichloroethane | 1 : 1 | 3.90 | |
| Calix[4]arene-bis(crown-6) | 1-Octanol | 1 : 1 | 2.9 | |
| Calix[4]arene-bis(crown-6) | Chloroform | 1 : 1 | 0.62 | |
| Calix[4]arene-bis(crown-6) | Toluene | 1 : 1 | 0.30 | |
| Calix[4]arene-bis(crown-6) | 2-Nitrophenyl octyl ether | 1 : 1 | 1.01 | |
| Calix[4]arene-bis(napthocrown-6) | Nitrobenzene | 1 : 1 | 7.71 | |
| Calix[4]arene-bis(napthocrown-6) | 1,2-Dichloroethane | 1 : 1 | 2.62 | |
| Calix[4]arene-bis(napthocrown-6) | 1-Octanol | 1 : 1 | 0.15 | |
| Calix[4]arene-bis(napthocrown-6) | Chloroform | 1 : 1 | 0.09 | |
| Calix[4]arene-bis(napthocrown-6) | Toluene | 1 : 1 | 0.02 | |
| Calix[4]arene-bis(napthocrown-6) | 2-Nitrophenyl octyl ether | 1 : 1 | 3.78 | |
| Bis-(octyloxy)calix[4]arene-mono-crown-6 | Nitrobenzene | 1 : 1 | 0.91 |
|
| Bis-(octyloxy)calix[4]arene-mono-crown-6 | NPOE | 1 : 1 | 1.42 | |
| Bis-(octyloxy)calix[4]arene-mono-crown-6 | 1-Octanol | 1 : 1 | 0.37 | |
| Bis-(octyloxy)calix[4]arene-mono-crown-6 | MIBK | 1 : 1 | 0.74 | |
| Bis-(octyloxy)calix[4]arene-mono-crown-6 | Chloroform | 1 : 1 | 0.05 | |
| Bis-(octyloxy)calix[4]arene-mono-crown-6 | PTMS | 1 : 1 | 1.04 | |
|
| Chloroform | 1 : 1 | 25 |
|
| D | Nitrobenzene | 1 : 1 | 5.2 |
|