| Literature DB >> 23363052 |
Deborah L Stoliker1, Nazila Kaviani, Douglas B Kent, James A Davis.
Abstract
BACKGROUND: Previously described methods to separate dissolved U(IV) from dissolved U(VI) under acidic anoxic conditions prior to laboratory analysis were ineffective with materials currently available commercially. Three strong anion exchange resins were examined for their efficiency in separating, recovering, and preserving both redox states during separation.Entities:
Year: 2013 PMID: 23363052 PMCID: PMC3563538 DOI: 10.1186/1467-4866-14-1
Source DB: PubMed Journal: Geochem Trans ISSN: 1467-4866 Impact factor: 4.737
Figure 1Use of safranin-o leuco dye as a visual oxidation indicator. a) Bio-Rad® AG1x8 resin in Poly-prep column including a stop-cock valve to control flow without indicator dye showing original color of the resin; b) Dowex® 1x8 resin in Pierce polystyrene column including top and bottom frits to control flow without indicator dye showing original color of the resin; c) Solution of safranin-o in the oxidized form (1 drop of 1% solution in 4 M HCl); d) Anoxic safranin-o (colorless, reduced form) in 4 N HCl after reduction with Ti(III); e) Example of anoxic resin (no pre-treatment) after addition of reduced safranin-o solution with visible oxidation (pink color on resin); f) Anoxic resin after pre-treatment with Ti(III) and addition of reduced safranin-o solution (no color change observed).
Adopted method for the anoxic separation of U(IV)/U(VI) at micro-molar concentrations
| 1 | Wash ~2-5 g of Dowex® 1x8 resin (100–200 mesh, chloride form) with ~20 mL 0.1 M HCl, repeat 4x | Pre-wash to remove any residual material from resin production that can interfere with uranium analysis via KPA |
| 2 | Use final rinse from Step 1 to slurry-pack a suitable column (such as a Thermo Scientific® Pierce polystyrene column, 0.7 cm ID with top and bottom frits) to 1.5-2 mL bed volume | Use a bed-height to column diameter ratio >3. In this study, bed-height to column diameter ratios between 5 and 7 were used with success |
| 3 | Flush resin-packed column with 4 M HCl (~10 bed volumes) | Pre-flush to ensure resin column is completely saturated with 4 M HCl |
| 4 | Add two successive flushes of 1x10-2 M Ti(III) (2 bed volumes each) in 4 M HCl and, using end caps, seal in a final 1.5-2 bed volumes of Ti(III) and allow the packed resin column to soak for 3 or more days | Pre-treat resin to reduce oxidants associated with the resin that cause oxidation of U(IV) |
| 5 | Drain the resin column and flush with at least 10 bed volumes of 4 M HCl | To flush out residual Ti(III) prior to sample addition |
| 6 | Add uranium-containing solution in 4 M HCl (1 mL). Elute column with a total of 9 bed volumes of 4 M HCl and collect fraction(s) | To collect U(IV) fractions, which pass through the resin at 4 M HCl |
| 7 | Elute column with a total of 9 bed volumes of 0.1 M HCl and collect fraction(s) | To collect U(VI) fractions, which adsorb to resin at 4 M HCl but are eluted at 0.1 M HCl |
| 8 | Flush column with a total of 7 bed volumes of 0.1 M HCl | Post-flush to ensure all U(VI) is flushed away and clean resin for future use |
| 9 | Flush column with a total of 7 bed volumes of 4 M HCl | Post-flush to ensure all U(IV) is flushed away and resin column is in 4 M HCl state for future use |
| Column is ready to be re-used by repeating Steps 6–9 (Steps 1–5 need only be completed once) | ||
Figure 2Recovery of U(VI) from various resins under oxic conditions. Resin separation of oxic U(VI) solutions using Bio-Rad® AG1x8 prefilled Poly-prep columns, Bio-Rad® AG1x8 powder packed in the Poly-prep columns and Dowex® 1x8 powder packed in the Poly-prep and Pierce polystyrene(*) columns showing a) cumulative recovery of total uranium for both 4 M HCl (open symbols, U(IV)) and 0.1 M HCl (closed symbols, U(VI)) column elution with dashed lines indicating where the eluent composition was changed for each system and b) cumulative recovery of total uranium as U(VI) from only 0.1 M HCl (U(VI)) elutions.
Summary of selected resin separation tests including treatment steps and outcome
| Bio-Rad AG1x8 prefilled | Bio-Rad Poly-prep | Oxic | No | 2.1 | 72 | 0 | 100 | 0 | 100 |
| Bio-Rad AG1x8 prefilled | Bio-Rad Poly-prep | Oxic | No | 22.2 | 86 | 0 | 100 | 0 | 100 |
| Bio-Rad AG1x8 powder | Bio-Rad Poly-prep | Oxic | No | 2.1 | 92 | 0 | 100 | 0 | 100 |
| Dowex 1x8 powder | Bio-Rad Poly-prep | Oxic | No | 2.1 | 100 | 0 | 100 | 0 | 100 |
| Dowex 1x8 powder | Pierce polystyrene | Oxic | No | 2.1 | 100 | 0 | 100 | 0 | 100 |
| Bio-Rad AG1x8 prefilled | Bio-Rad Poly-prep | Anoxic | No | 2.1 | 81 | 36 | 64 | 0 | 100 |
| Dowex 1x8 powder | Pierce polystyrene | Anoxic | No | 8.7 | 100 | 98 | 2 | 86 | 14 |
| Dowex 1x8 powder | Pierce polystyrene | Anoxic | Yes | 8.7 | 100 | 98 | 2 | 98 | 2 |
| Dowex 1x8 powder | Pierce polystyrene | Anoxic | Yes | 1.8 | 100 | 0 | 100 | 0 | 100 |
| Dowex 1x8 powder | Pierce polystyrene | Anoxic | Yes | 2.8 | 100 | 100 | 0 | 100 | 0 |
| Dowex 1x8 powder | Pierce polystyrene | Anoxic | Yes | 2.1 | 100 | 10 | 90 | 11 | 89 |
| Dowex 1x8 powder | Pierce polystyrene | Anoxic | Yes | 1.8 | 100 | 48 | 52 | 47 | 53 |
a. 1 mL of uranium solution added to resin, uncertainty in recovered Utot was 3%.
b. Uncertainty in speciation recovery was 1%.
Figure 3U recovery from Dowex® 1x8 resin under anoxic conditions with varied U(IV)/U(VI) solutions. Dowex® 1x8 resin separation of anoxic solutions consisting of 0%, 10%, 48% and 100% U(IV) after resin pre-treatment showing a) cumulative recovery of total uranium for both 4 M HCl (open symbols, U(IV)) and 0.1 M HCl (closed symbols, U(VI)) column elution with dashed lines indicating where the eluent composition was changed for each system and b) cumulative recovery of total uranium as U(VI) from only 0.1 M HCl (U(VI)) elutions.