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3. Insight into the structure-property relation of UO2 nanoparticles

4. Understanding the size effects on the electronic structure of ThO2 nanoparticles

5. The application of HEXS and HERFD XANES for accurate structural characterization of actinide nanomaterials: application to ThO2

6. Towards the surface hydroxyl species in CeO$_2$ nanoparticles

7. The missing pieces of the PuO 2 nanoparticle puzzle

8. New insights into the mechanism of graphene oxide and radionuclide interaction through vacancy defects

9. Size Effects in Nanocrystalline Thoria

17. Solubility of Nanocrystalline Cerium Dioxide: Experimental Data and Thermodynamic Modeling

19. Formation of Neptunium(V) Carbonates: Examining the Forceful Influence of Alkali and Alkaline Earth Cations

22. Np(V) uptake by various clays

30. Overlooked impact of surface hydroxylation on the solubility of less-soluble compounds: a case study of CeO2Electronic supplementary information (ESI) available: HRTEM images and ED data; XRD data; Ce L3edge HERFD-XAS spectra; PDF G(r) experimental data and fit results; refined parameter values; dissolution curves; dissolution rate constants; comparison of different centrifugation. See DOI: https://doi.org/10.1039/d4en00014e

34. High Surface Area “3D Graphene Oxide” for Enhanced Sorption of Radionuclides (Adv. Mater. Interfaces 18/2022)

35. To form or not to form : PuO2 nanoparticles at acidic pH

36. High Surface Area '3D Graphene Oxide' for Enhanced Sorption of Radionuclides

37. To form or not to form: PuO2 nanoparticles at acidic pH

39. From X-ray Amorphous ThO2to Crystalline Nanoparticles through Long-Term Aging at Room Temperature

40. Insight into the structure–property relationship of UO2nanoparticles

41. Front Cover: The Application of HEXS and HERFD XANES for Accurate Structural Characterisation of Actinide Nanomaterials: The Case of ThO 2 (Chem. Eur. J. 1/2021)

43. Enhanced Sorption of Radionuclides by Defect-Rich Graphene Oxide

45. New insights into the mechanism of graphene oxide and radionuclide interaction

47. The missing pieces of the PuO2 nanoparticle puzzle

48. Enhanced Sorption of Radionuclides by Defect-Rich Graphene Oxide

49. New insights into the mechanism of graphene oxide and radionuclideinteraction

50. The missing pieces of the PuO2nanoparticle puzzle

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