Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Modolo, Giuseppe

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in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (15/15 displayed)

  • 2023Solvent Optimization Studies for a New EURO-GANEX Process with 2,2'-Oxybis(<i>N,N</i>-di-<i>n</i>-decylpropanamide) (mTDDGA) and Its Radiolysis Products7citations
  • 2023First-principles study of the radiolytic degradation of diglycolamides1citations
  • 2022Hydrolysis of Uranyl‐, Nd‐, Ce‐Ions and their Mixtures by Thermal Decomposition of Urea5citations
  • 2022Gamma radiolytic stability of the novel modified diglycolamide 2,2′-oxybis(<i>N</i>,<i>N</i>-didecylpropanamide) (mTDDGA) for grouped actinide extraction10citations
  • 2021Dosimetry and methodology of gamma irradiation for degradation studies on solvent extraction systems8citations
  • 2021Hydrolysis of uranium(VI), neodymium(III) and cerium(III/IV) by thermal decomposition of ureacitations
  • 2021Selective extraction of trivalent actinides using CyMe4BTPhen in the ionic liquid Aliquat-336 nitrate12citations
  • 2020The conversion of ammonium uranate prepared via sol-gel synthesis into uranium oxides17citations
  • 2020Selective Extraction of Americium from Curium and the Lanthanides by the Lipophilic Ligand CyMe4BTPhen Dissolved in Aliquat-336 Nitrate Ionic Liquid21citations
  • 2020Solvent Extraction Studies for the Separation of Trivalent Actinides from Lanthanides with a Triazole-functionalized 1,10-phenanthroline Extractant18citations
  • 2020Fabrication of Nd- and Ce-doped uranium dioxide microspheres via internal gelation13citations
  • 2020Gamma Radiolysis of TODGA and CyMe4BTPhen in the Ionic Liquid Tri-n-Octylmethylammonium Nitrate24citations
  • 2020Structural changes of Nd- and Ce-doped ammonium diuranate microspheres during the conversion to U<sub>1-y</sub> Ln yO<sub>2±x</sub>2citations
  • 2019Homogenous recycling of transuranium elements from irradiated fast reactor fuel by the EURO-GANEX solvent extraction process61citations
  • 2018Solvent Extraction of Am(III), Cm(III), and Ln(III) Ions from Simulated Highly Active Raffinate Solutions by TODGA Diluted in Aliquat-336 Nitrate Ionic Liquid27citations

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Geist, Andreas
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Hermans, Rainier
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Verwerft, Marc
13 / 35 shared
Hecke, Karen Van
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Huskens, Jurriaan
1 / 9 shared
Verlinden, Bart
4 / 5 shared
Cardinaels, Thomas
14 / 75 shared
Panak, Petra J.
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Binnemans, Koen
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Hupert, Michelle
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Wessling, Patrik
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Verboom, Willem
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Egberink, Richard J. M.
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Wilden, Andreas
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Kowalski, Piotr M.
2 / 4 shared
Schreinemachers, Christian
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Leinders, Gregory
5 / 15 shared
Bollen, Olivier
2 / 2 shared
Tyrpekl, Václav
1 / 3 shared
Santiago-Schuebel, Beatrix
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Mihailescu, Liviu-Cristian
1 / 1 shared
Zsabka, Peter
5 / 10 shared
Verguts, Ken
1 / 8 shared
Tyrpekl, Vaclav
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Zsabka, Péter
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Adriaensen, Lesley
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Opsomer, Tomas
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Dehaen, Wim
1 / 47 shared
Jespers, Vincent
1 / 1 shared
Voorspoels, Stefan
1 / 1 shared
Podor, Renaud
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Lautru, Joseph
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Clavier, Nicolas
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Miguirditchian, Manuel
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Magnusson, Daniel
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Carrott, Michael
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Bourg, Stéphane
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Hérès, Xavier
1 / 1 shared
Taylor, Robin
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Müllich, Udo
1 / 1 shared
Sorel, Christian
1 / 1 shared
Malmbeck, Rikard
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2022
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Co-Authors (by relevance)

  • Geist, Andreas
  • Hermans, Rainier
  • Verwerft, Marc
  • Hecke, Karen Van
  • Huskens, Jurriaan
  • Verlinden, Bart
  • Cardinaels, Thomas
  • Panak, Petra J.
  • Binnemans, Koen
  • Hupert, Michelle
  • Wessling, Patrik
  • Verboom, Willem
  • Egberink, Richard J. M.
  • Wilden, Andreas
  • Kowalski, Piotr M.
  • Schreinemachers, Christian
  • Leinders, Gregory
  • Bollen, Olivier
  • Tyrpekl, Václav
  • Santiago-Schuebel, Beatrix
  • Mihailescu, Liviu-Cristian
  • Zsabka, Peter
  • Verguts, Ken
  • Tyrpekl, Vaclav
  • Zsabka, Péter
  • Adriaensen, Lesley
  • Opsomer, Tomas
  • Dehaen, Wim
  • Jespers, Vincent
  • Voorspoels, Stefan
  • Podor, Renaud
  • Lautru, Joseph
  • Clavier, Nicolas
  • Miguirditchian, Manuel
  • Magnusson, Daniel
  • Carrott, Michael
  • Bourg, Stéphane
  • Hérès, Xavier
  • Taylor, Robin
  • Müllich, Udo
  • Sorel, Christian
  • Malmbeck, Rikard
OrganizationsLocationPeople

document

Hydrolysis of uranium(VI), neodymium(III) and cerium(III/IV) by thermal decomposition of urea

  • Modolo, Giuseppe
  • Tyrpekl, Vaclav
  • Binnemans, Koen
  • Schreinemachers, Christian
  • Leinders, Gregory
  • Verwerft, Marc
  • Bollen, Olivier
  • Cardinaels, Thomas
Abstract

The slides were presented at the Uranium Science Conference on July 1, 2021 (T21). <strong>Abstract</strong> Uranium dioxide is used as conventional fuel for the production of energy by nuclear fission. Even though the front-end of the nuclear fuel cycle is well known, studies to investigate alternative fabrication routes to prepare precursors for oxidic uranium-based fuels are ongoing. The precipitation induced by thermal decomposition of urea has been demonstrated for several metals (e.g. Ti, Ni, Cu, Zn, Ce, Th), and a modified hydrothermal approach has been applied to precipitate ammonium diuranate (ADU) from a solution containing uranyl ions. Within this study, we investigated the hydrolysis behaviour of uranyl and lanthanide mixtures to support the development of alternative fabrication routes for transmutation fuel, such as sol-gel processes. The lanthanides Nd and Ce acted as surrogates for the actinides Am and Pu, respectively. We specifically sought out parameters for the hydrolysis of uranyl ions induced by thermal decomposition of urea at ambient pressure. Moreover, the hydrolysis behaviour of Nd(III), Ce(III) and Ce(IV), as well as mixtures of the lanthanide- and uranyl ions, was investigated using the conditions determined for uranyl. Hydrolysis experiments were carried out at 90 °C and 100 °C for n(urea) : n(UO2(2+)) ratios of 26 and 52. The solution was sampled during the precipitation reaction to monitor its pH and certain samples were analysed applying UV/VIS spectroscopy and inductively coupled plasma mass spectrometry, while powder X-ray diffraction and scanning electron microscopy were applied to characterise the precipitates. Uranyl ions hydrolysed between pH 5.1 and pH 5.5 and the experimental conditions impacted the reaction kinetics significantly. A temperature increase from 90 °C to 100 °C reduced the time to finish the precipitation by about 75 %, whereas a doubling of the urea content decreased the reaction time by about 50 %. ADU precipitates of different composition (x UO3 · y NH3 · z H2O) formed under the applied conditions. For trivalent Nd and Ce, a comparable pH evolution and lanthanide carbonate hydroxide (LnCO3OH) products were observed, whereas tetravalent Ce hydrolysed at a lower pH forming CeO2. The precipitation behaviour was confirmed for solutions containing binary mixtures of uranyl and lanthanide cations, while a simultaneous precipitation of Nd(III) and Ce(III) was observed for ternary U/Nd/Ce compositions. For the latter, a partial incorporation of the Ln phase into the ADU phase was observed, whereas the precipitation in the presence of Ce(IV)/CeO2 led to the formation of three separate phases.

Topics
  • impedance spectroscopy
  • phase
  • scanning electron microscopy
  • experiment
  • powder X-ray diffraction
  • precipitate
  • precipitation
  • forming
  • additive manufacturing
  • thermal decomposition
  • spectrometry
  • Neodymium
  • Cerium
  • Uranium
  • inductively coupled plasma mass spectrometry