Adaptive Phase or Variant Formation at the Austenite/Twinned Martensite Interface in Modulated Ni–Mn–Ga Martensite

Author:

Chulist Robert1ORCID,Wójcik Anna1,Sozinov Alexei2,Tokarski Tomasz3,Faryna Marek1,Schell Norbert4,Skrotzki Werner5,Li Bin6,Sehitoglu Huseyin7,Li Xi8,Maziarz Wojciech1

Affiliation:

1. Institute of Metallurgy and Materials Science Polish Academy of Sciences 25 Reymonta St. Krakow 30‐059 Poland

2. Material Physics Laboratory LUT University Yliopistonkatu 34 Lappeenranta 53850 Finland

3. Academic Centre for Materials and Nanotechnology AGH University of Science and Technology al. A. Mickiewicza 30 Krakow 30‐059 Poland

4. Institute of Materials Physics Helmholtz‐Zentrum Geesthacht Max‐Planck‐Strasse 1 D‐21502 Geesthacht Germany

5. Institute of Solid State and Materials Physics Technische Universität Dresden D‐01062 Dresden Germany

6. Department of Industrial and Manufacturing Systems Engineering Iowa State University Ames IA 50011 USA

7. Department of Mechanical Science and Engineering University of Illinois at Urbana‐Champaign 1206 W. Green St. Urbana IL 61801 USA

8. Shanghai Key Lab of Advanced High‐Temperature Materials and Precision Forming Shanghai Jiao Tong University Shanghai 200240 China

Abstract

AbstractThe crystal structure and transformation path from austenite to 10M martensite in Ni–Mn–Ga single crystal are examined employing high‐energy synchrotron radiation, scanning, and transmission electron microscopy. Using temperature gradient, an austenite/twinned martensite interface is stabilized revealing the crystal structure and microstructure of both phases and the transformation sequence across the interface. Depending on the distance from the interface, three distinct types of martensite crystal lattice, namely simple tetragonal and two monoclinic modulated ones, that is, 10M′ and 10M are confirmed. In situ measurements show that lattice mismatch formed at the habit plane is compensated by the formation of micro‐twinned and branched martensite along with an elastic change in lattice parameters. It is shown that the characteristics for periodic shuffling twin boundaries, such as modulation twins or inverted stacking faults, are installed in later stages of transformation. In other words, large microstructure elements that most efficiently accommodate the strain are installed first, and then smaller elements are operable. Overall, the experimental results show that the crystal lattice does not adapt modulated phase at the habit plane and cannot be built up from simple non‐modulated tetragonal blocks but rather a specific sequence of phase transformations using shear/shuffling deformation takes place.

Funder

Academy of Finland

Publisher

Wiley

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