A model is proposed for surface relaxation of spherical nanocrystals. Besides reproducing the primary effect of changing the average unit cell parameter, the model accounts for the inhomogeneous atomic displacement caused by surface relaxation and its effect on the diffraction line profiles. Based on three parameters with clear physical meanings - extension of the sub-coordination effect, maximum radial displacement due to sub-coordination, and effective hydrostatic pressure - the model also considers elastic anisotropy and provides parametric expressions of the diffraction line profiles directly applicable in data analysis. The model was tested on spherical nanocrystals of several fccmetals, matching atomic positions with those provided by Molecular Dynamics (MD) simulations based on embedded atom potentials. Agreement was also verified between powder diffraction patterns generated by the Debye scattering equation, using atomic positions from MD and the proposed model.

Diffraction peak profiles of surface relaxed spherical nanocrystals / Perez Demydenko, Camilo; Scardi, Paolo. - In: PHILOSOPHICAL MAGAZINE. - ISSN 1478-6435. - ELETTRONICO. - 97:26(2017), pp. 2317-2346. [10.1080/14786435.2017.1332435]

Diffraction peak profiles of surface relaxed spherical nanocrystals

Perez Demydenko, Camilo;Scardi, Paolo
2017-01-01

Abstract

A model is proposed for surface relaxation of spherical nanocrystals. Besides reproducing the primary effect of changing the average unit cell parameter, the model accounts for the inhomogeneous atomic displacement caused by surface relaxation and its effect on the diffraction line profiles. Based on three parameters with clear physical meanings - extension of the sub-coordination effect, maximum radial displacement due to sub-coordination, and effective hydrostatic pressure - the model also considers elastic anisotropy and provides parametric expressions of the diffraction line profiles directly applicable in data analysis. The model was tested on spherical nanocrystals of several fccmetals, matching atomic positions with those provided by Molecular Dynamics (MD) simulations based on embedded atom potentials. Agreement was also verified between powder diffraction patterns generated by the Debye scattering equation, using atomic positions from MD and the proposed model.
2017
26
Perez Demydenko, Camilo; Scardi, Paolo
Diffraction peak profiles of surface relaxed spherical nanocrystals / Perez Demydenko, Camilo; Scardi, Paolo. - In: PHILOSOPHICAL MAGAZINE. - ISSN 1478-6435. - ELETTRONICO. - 97:26(2017), pp. 2317-2346. [10.1080/14786435.2017.1332435]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11572/183425
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