Compliant Lattice Modulations Enable Anomalous Elasticity in Ni–Mn–Ga Martensite

Author:

Repček Kristýna1ORCID,Stoklasová Pavla1ORCID,Grabec Tomáš1ORCID,Sedlák Petr1ORCID,Olejňák Juraj2,Vinogradova Mariia3ORCID,Sozinov Alexei3,Veřtát Petr4ORCID,Straka Ladislav4ORCID,Heczko Oleg4ORCID,Seiner Hanuš1ORCID

Affiliation:

1. Institute of Thermomechanics of the Czech Academy of Sciences Prague 8 18200 Czech Republic

2. Faculty of Nuclear Sciences and Physical Engineering Czech Technical University in Prague Prague 2 12000 Czech Republic

3. Material Physics Laboratory Lappeenranta‐Lahti University of Technology (LUT) Lappeenranta 53850 Finland

4. FZU – Institute of Physics of the Czech Academy of Sciences Prague 8 18200 Czech Republic

Abstract

AbstractHigh mobility of twin boundaries in modulated martensites of Ni–Mn–Ga‐based ferromagnetic shape memory alloys holds a promise for unique magnetomechanical applications. This feature has not been fully understood so far, and in particular, it has yet not been unveiled what makes the lattice mechanics of modulated Ni–Mn–Ga specifically different from other martensitic alloys. Here, results of dedicated laser‐ultrasonic measurements on hierarchically twinned five‐layer modulated (10M) crystals fill this gap. Using a combination of transient grating spectroscopy and laser‐based resonant ultrasound spectroscopy, it is confirmed that there is a shear elastic instability in the lattice, being significantly stronger than in any other martensitic material and also than what the first‐principles calculations for Ni–Mn–Ga predict. The experimental results reveal that the instability is directly related to the lattice modulations. A lattice‐scale mechanism of dynamic faulting of the modulation sequence that explains this behavior is proposed; this mechanism can explain the extraordinary mobility of twin boundaries in 10M.

Funder

Grantová Agentura České Republiky

České Vysoké Učení Technické v Praze

Ministerstvo Školství, Mládeže a Tělovýchovy

Publisher

Wiley

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