Repositorio Institucional
Repositorio Institucional
CONICET Digital
  • Inicio
  • EXPLORAR
    • AUTORES
    • DISCIPLINAS
    • COMUNIDADES
  • Estadísticas
  • Novedades
    • Noticias
    • Boletines
  • Ayuda
    • General
    • Datos de investigación
  • Acerca de
    • CONICET Digital
    • Equipo
    • Red Federal
  • Contacto
JavaScript is disabled for your browser. Some features of this site may not work without it.
  • INFORMACIÓN GENERAL
  • RESUMEN
  • ESTADISTICAS
 
Artículo

Predictive Gibbs-energy approach to crystalline/amorphous relative stability of nanoparticles: Size-effect calculations and experimental test

Pelegrina, Jorge LuisIcon ; Gennari, Fabiana CristinaIcon ; Condo, Adriana MariaIcon ; Fernandez Guillermet, Armando JorgeIcon
Fecha de publicación: 25/12/2016
Editorial: Elsevier Science Sa
Revista: Journal of Alloys and Compounds
ISSN: 0925-8388
Idioma: Inglés
Tipo de recurso: Artículo publicado

Resumen

Ball milling experiments performed in the last decade in various systems opened the question about the stability of crystalline nanoparticles with respect to the same group of atoms but in the amorphous state. The general purpose of the present work is to develop a predictive approach to this problem, and assess its accuracy by confronting thermodynamic calculations with experimental observations on Cu-Zn nanoparticles. The bases of the approach are as follows. First, the present Gibbs energy formalism makes use of the “lattice-stability” concept currently applied in so-called CALPHAD (“Calculation of Phase Diagrams”) modeling work. Second, the enthalpy of formation of the alloy phases is treated in the framework of the Miedema model, with special attention to the parameters for the amorphous phase. Third, the surface contribution to Gibbs energy is accounted for. With the current thermodynamic description, the sizes of the crystalline nanoparticles which are stable with respect to the amorphous are determined by calculation. These predictions are confronted with the minimum size of the nanoparticles generated by subjecting γ-Cu-Zn powders to low-energy milling treatments, which is determined by X-ray diffraction and high-resolution transmission electron microscopy techniques. On this basis, a discussion is reported of the accuracy of the present approach. In particular, the parameters in the Gibbs energy description which crucially affect the agreement between calculations and experiments are highlighted.
Palabras clave: Amorphous Phase , Gibbs Energy , Lattice-Stability , Mechanical Alloying , Miedema Model , Nanoparticles
Ver el registro completo
 
Archivos asociados
Thumbnail
 
Tamaño: 1.332Mb
Formato: PDF
.
Descargar
Licencia
info:eu-repo/semantics/openAccess Excepto donde se diga explícitamente, este item se publica bajo la siguiente descripción: Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Unported (CC BY-NC-SA 2.5)
Identificadores
URI: http://hdl.handle.net/11336/49631
URL: https://www.sciencedirect.com/science/article/pii/S0925838816323209
DOI: http://dx.doi.org/10.1016/j.jallcom.2016.07.284
Colecciones
Articulos(CCT - PATAGONIA NORTE)
Articulos de CTRO.CIENTIFICO TECNOL.CONICET - PATAGONIA NORTE
Citación
Pelegrina, Jorge Luis; Gennari, Fabiana Cristina; Condo, Adriana Maria; Fernandez Guillermet, Armando Jorge; Predictive Gibbs-energy approach to crystalline/amorphous relative stability of nanoparticles: Size-effect calculations and experimental test; Elsevier Science Sa; Journal of Alloys and Compounds; 689; 25-12-2016; 161-168
Compartir
Altmétricas
 

Enviar por e-mail
Separar cada destinatario (hasta 5) con punto y coma.
  • Facebook
  • X Conicet Digital
  • Instagram
  • YouTube
  • Sound Cloud
  • LinkedIn

Los contenidos del CONICET están licenciados bajo Creative Commons Reconocimiento 2.5 Argentina License

https://www.conicet.gov.ar/ - CONICET

Inicio

Explorar

  • Autores
  • Disciplinas
  • Comunidades

Estadísticas

Novedades

  • Noticias
  • Boletines

Ayuda

Acerca de

  • CONICET Digital
  • Equipo
  • Red Federal

Contacto

Godoy Cruz 2290 (C1425FQB) CABA – República Argentina – Tel: +5411 4899-5400 repositorio@conicet.gov.ar
TÉRMINOS Y CONDICIONES