For the first time, the 7M modulated structure, frequently observed in ferromagnetic shape memory Ni-Mn-Ga martensitic phases, is solved by powder diffraction analysis. Two polycrystalline samples with composition Ni 2 Mn 1.2 Ga 0.8 and Ni 2.15 Mn 0.85 Ga, respectively, showing a 7M martensitic stat
Commensurate and incommensurate “5M” modulated crystal structures in Ni–Mn–Ga martensitic phases
✍ Scribed by L. Righi; F. Albertini; L. Pareti; A. Paoluzi; G. Calestani
- Publisher
- Elsevier Science
- Year
- 2007
- Tongue
- English
- Weight
- 487 KB
- Volume
- 55
- Category
- Article
- ISSN
- 1359-6454
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✦ Synopsis
It is well known that the composition of ferromagnetic shape memory Ni-Mn-Ga Heusler alloys determines both temperature of martensitic transformations and the structure type of the product phase. In the present work we focused our attention on the structural study of the so-called ''5M'' modulated structure. In particular, the structure of Ni 1.95 Mn 1.19 Ga 0.86 martensitic phase is analysed by powder X-ray diffraction (PXRD) and compared with that of the stoichiometric Ni 2 MnGa martensite. The study of the diffraction data reveals the occurrence of commensurate (C) structural modulation in Ni 1.95 Mn 1.19 Ga 0.86 ; this contrasts with Ni 2 MnGa, where an incommensurate (IC) structural modulation was evident. The two phases also differ in the symmetry of the fundamental martensitic lattice. In fact, the incommensurate modulation is related to an orthorhombic basic structure, while the commensurate variant presents a monoclinic symmetry. The commensurate modulated structure has been investigated by using the superspace approach already adopted to solve the structure of Ni 2 MnGa martensite. The structure has been determined by Rietveld refinement of PXRD data.
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