Repček Kristýna, Stoklasová Pavla, Grabec Tomáš, Sedlák Petr, Olejňák Juraj, Vinogradova Mariia, Sozinov Alexei, Veřtát Petr, Straka Ladislav, Heczko Oleg, Seiner Hanuš
Institute of Thermomechanics of the Czech Academy of Sciences, Prague 8, 18200, Czech Republic.
Faculty of Nuclear Sciences and Physical Engineering, Czech Technical University in Prague, Prague 2, 12000, Czech Republic.
Adv Mater. 2024 Sep;36(39):e2406672. doi: 10.1002/adma.202406672. Epub 2024 Aug 12.
High 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.
镍-锰-镓基铁磁形状记忆合金调制马氏体中孪晶界的高迁移率为独特的磁机械应用带来了希望。到目前为止,这一特性尚未得到充分理解,特别是,调制镍-锰-镓的晶格力学与其他马氏体合金具体有何不同仍未揭示。在此,对分层孪晶的五层调制(10M)晶体进行的专门激光超声测量结果填补了这一空白。结合瞬态光栅光谱和基于激光的共振超声光谱,证实晶格中存在剪切弹性不稳定性,其比任何其他马氏体材料中的都要强得多,也比镍-锰-镓的第一性原理计算预测的要强得多。实验结果表明,这种不稳定性与晶格调制直接相关。提出了一种解释这种行为的调制序列动态断层的晶格尺度机制;该机制可以解释10M中孪晶界的非凡迁移率。