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1.
Appl Spectrosc ; 76(5): 580-589, 2022 May.
Artículo en Inglés | MEDLINE | ID: mdl-35108115

RESUMEN

The study and development of present and future processes for the treatment/recycling of spent nuclear fuels require many steps, from design in the laboratory to setting up on an industrial scale. In all of these steps, analysis and instrumentation are key points. For scientific reasons (small-scale studies, control of phenomena, etc.) but also with regard to minimizing costs, risks, and waste, such developments are increasingly carried out on milli- or microfluidic devices. The logic is the same for the chemical analyses associated with their follow-up and interpretation. Due to this, over the last few years, opto-microfluidic analysis devices adapted to the monitoring of different processes (dissolution, liquid-liquid extraction, precipitation, etc.) have been increasingly designed and developed. In this work, we prove that photonic lab-on-a-chip (PhLoC) technology is fully suitable for all actinides concentration monitoring along the plutonium uranium refining extraction (plutonium, uranium, reduction, extraction, or Purex) process. Several PhLoC microfluidic platforms were specifically designed and used in different nuclear research and development (R&D) laboratories, to tackle actinides analysis in multiple oxidation states even in mixtures. The detection limits reached (tens of µmol·L-1) are fully compliant with on-line process monitoring, whereas a range of analyzable concentrations of three orders of magnitude can be covered with less than 150 µL of analyte. Finally, this work confirms the possibility and the potential of coupling Raman and ultraviolet-visible (UV-Vis) spectroscopies at the microfluidic scale, opening the perspective of measuring very complex mixtures.


Asunto(s)
Elementos de Series Actinoides , Plutonio , Uranio , Elementos de Series Actinoides/análisis , Dispositivos Laboratorio en un Chip , Microfluídica , Plutonio/análisis , Uranio/análisis
2.
Environ Sci Technol ; 46(11): 6190-7, 2012 Jun 05.
Artículo en Inglés | MEDLINE | ID: mdl-22571620

RESUMEN

Removing phosphate from alkaline high-level waste sludges at the Department of Energy's Hanford Site in Washington State is necessary to increase the waste loading in the borosilicate glass waste form that will be used to immobilize the highly radioactive fraction of these wastes. We are developing a process which first leaches phosphate from the high-level waste solids with aqueous sodium hydroxide, and then isolates the phosphate by precipitation with calcium oxide. Tests with actual tank waste confirmed that this process is an effective method of phosphate removal from the sludge and offers an additional option for managing the phosphorus in the Hanford tank waste solids. The presence of vibrationally active species, such as nitrate and phosphate ions, in the tank waste processing streams makes the phosphate removal process an ideal candidate for monitoring by Raman or infrared spectroscopic means. As a proof-of-principle demonstration, Raman and Fourier transform infrared (FTIR) spectra were acquired for all phases during a test of the process with actual tank waste. Quantitative determination of phosphate, nitrate, and sulfate in the liquid phases was achieved by Raman spectroscopy, demonstrating the applicability of Raman spectroscopy for the monitoring of these species in the tank waste process streams.


Asunto(s)
Fosfatos/aislamiento & purificación , Residuos Radiactivos/análisis , Eliminación de Residuos/métodos , Análisis Espectral/métodos , Compuestos de Calcio/química , Precipitación Química , Nitratos/análisis , Óxidos/química , Fósforo/análisis , Sodio/análisis , Soluciones , Espectrofotometría Atómica , Espectroscopía Infrarroja por Transformada de Fourier , Espectrometría Raman , Sulfatos/análisis , Azufre/análisis , Washingtón , Contaminantes Radiactivos del Agua/aislamiento & purificación
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