Phase transition and twinning in polycrystals probed by in situ high temperature 3D reciprocal space mapping

Author:

Purushottam Raj Purohit Ravi Raj Purohit1,Fowan Daniel Pepin2,Thune Elsa2ORCID,Arnaud Stephan3,Chahine Gilbert4ORCID,Blanc Nils3,Castelnau Olivier5ORCID,Guinebretière René2ORCID

Affiliation:

1. Université Grenoble Alpes, CEA, IRIG, MEM, CNRS, 17 Avenue des Martyrs, Grenoble 38000, France

2. Université de Limoges, IRCER, UMR CNRS 7315, 12 rue Atlantis, 87068 Limoges, France

3. Université Grenoble Alpes, CNRS, Institut Néel UPR CNRS 2940, 38000 Grenoble, France

4. SIMaP, Grenoble INP, CNRS, Université Grenoble Alpes, 38000 Grenoble, France

5. Laboratoire PIMM, UMR CNRS 8006, ENSAM, CNAM, 151 Bd de l'Hôpital, 75013 Paris, France

Abstract

Polycrystalline materials exhibit physical properties that are driven by both the interatomic crystallographic structure as well as the nature and density of structural defects. Crystallographic evolutions driven by phase transitions and associated twinning process can be observed in situ in three-dimensional (3D) using monochromatic synchrotron radiation at very high temperatures (over 1000 °C). This paper focuses on continuous measurements of the 3D-reciprocal space maps by high-resolution x-ray diffraction as a function of temperature along a phase transition process occurring between 1200 °C and room temperature. These high precision measurements allow observing the reciprocal space node splitting and the evolution of the diffuse scattering signal around that node as a function of temperature. The capability of this experimental method is illustrated by direct in situ high temperature measurements of the 3D splitting of a reciprocal space node due to phase transition recorded on dense pure zirconia polycrystals.

Funder

Agence Nationale de la Recherche

Publisher

AIP Publishing

Subject

Physics and Astronomy (miscellaneous)

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