Startseite Superplasticity in nanocrystalline ceramics: pure grain boundary phenomena or not?
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Superplasticity in nanocrystalline ceramics: pure grain boundary phenomena or not?

Paper presented at the Second International Workshop “Correlation of Microstructure – Properties and Multiscale Modelling of Plasticity”, Fuenteheridos, Huelva, Spain, June 17–21, 2009
  • Arturo Domínguez-Rodríguez , Diego Gómez-García , Miguel Castillo-Rodríguez , Eugenio Zapata-Solvas und Rachman Chaim
Veröffentlicht/Copyright: 31. Mai 2013
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Abstract

Superplasticity in ceramics has been the subject of intense research activity for the last two decades. Quite recently, the fabrication of fully dense nanocrystalline oxides with grain size below 100 nm enabled examination of their superplastic behaviour. This work presents a critical analysis of the plasticity of two important nanostructured oxide systems: MgO and yttria tetragonal zirconia polycrystals. A thorough comparison of their plastic deformation reveals that nano-structuring may be a necessary, but not a sufficient condition for superplasticity in ceramics as commonly assumed. Instead, the changes in the chemical composition and the transport properties, through the bulk and at grain boundaries, versus temperature and grain size can induce a rich variety of mechanical responses.


* Correspondence address, Prof. Diego Gómez García Departamento de Física de la Materia CondensadaInstituto de Ciencia de Materiales de Sevilla Universidad de Sevilla-CSIC P. O. Box 1065, 41080 Sevilla, Spain Tel.: +34 95 455 9504 Fax: +34 95 461 2097 E-mail:

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Received: 2009-10-23
Accepted: 2010-5-13
Published Online: 2013-05-31
Published in Print: 2010-10-01

© 2010, Carl Hanser Verlag, München

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