6533b7cffe1ef96bd1259796

RESEARCH PRODUCT

Crossing the boundary between face-centred cubic and hexagonal close packed: the structure of nanosized cobalt is unraveled by a model accounting for shape, size distribution and stacking faults, allowing simulation of XRD, XANES and EXAFS

Alessandro LongoFrancesco GianniciLuisa SciortinoAntonino Martorana

subject

DiffractionMaterials scienceExtended X-ray absorption fine structureClose-packing of equal spheresStackingAb initiochemistry.chemical_elementMolecular physicsGeneral Biochemistry Genetics and Molecular BiologyXANESCondensed Matter::Materials ScienceCrystallographysymbols.namesakechemistryDebye–Hückel equationsymbolsCobalt

description

The properties of nanostructured cobalt in the fields of magnetic, catalytic and biomaterials depend critically on Co close packing. This paper reports a structural analysis of nanosized cobalt based on the whole X-ray diffraction (XRD) pattern simulation allowed by the Debye equation. The underlying structural model involves statistical sequences of cobalt layers and produces simulated XRD powder patterns bearing the concurrent signatures of hexagonal and cubic close packing (h.c.p. and f.c.c.). Shape, size distribution and distance distribution between pairs of atoms are also modelled. The simulation algorithm allows straightforward fitting to experimental data and hence the quantitative assessment of the model parameters. Analysis of two samples having, respectively, h.c.p. and f.c.c. appearance is reported. Extended X-ray absorption fine-structure (EXAFS) and X-ray absorption near-edge structure (XANES) spectra are simulated on the basis of the model, giving a tool for the interpretation of structural data complementary to XRD. The outlined structural analysis provides a rigorous structural basis for correlations with magnetic and catalytic properties and an experimental reference forab initiomodelling of these properties.

https://doi.org/10.1107/s1600576714015970