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Following the Martensitic Configuration Footprints in the Transition Route of Ni-Mn-Ga Magnetic Shape Memory Films: Insight into the Role of Twin Boundaries and Interfaces

机译:遵循Ni-Mn-Ga磁性形状记忆膜过渡路径中的马氏体结构足迹:洞察双边界和界面的作用

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摘要

Magnetic shape memory Heuslers have a great potential for their exploitation in next-generation cooling devices and actuating systems, due to their “giant” caloric and thermo/magnetomechanical effects arising from the combination of magnetic order and a martensitic transition. Thermal hysteresis, broad transition range, and twinning stress are among the major obstacles preventing the full exploitation of these materials in applications. Using Ni-Mn-Ga seven-modulated epitaxial thin films as a model system, we investigated the possible links between the phase transition and the details of the twin variants configuration in the martensitic phase. We explored the crystallographic relations between the martensitic variants from the atomic-scale to the micro-scale through high-resolution techniques and combined this information with the direct observation of the evolution of martensitic twin variants vs. temperature. Based on our multiscale investigation, we propose a route for the martensitic phase transition, in which the interfaces between different colonies of twins play the major role of initiators for both the forward and reverse phase transition. Linking the martensitic transition to the martensitic configuration sheds light onto the possible mechanisms influencing the transition and paves the way towards microstructure engineering for the full exploitation of shape memory Heuslers in different applications.
机译:磁性形状记忆Heusler具有强大的发热量和磁/马氏体相结合的热/磁机械效应,因此在下一代冷却设备和致动系统中具有巨大的开发潜力。热滞后,大的转变范围和孪生应力是阻碍在应用中充分利用这些材料的主要障碍。使用Ni-Mn-Ga七调制外延薄膜作为模型系统,我们研究了相变与马氏体相中双相变构型的细节之间的可能联系。我们通过高分辨率技术探索了从原子尺度到微观尺度的马氏体变体之间的晶体学关系,并将此信息与对马氏体孪晶变体随温度的演变的直接观察相结合。基于我们的多尺度研究,我们提出了马氏体相变的途径,其中双胞胎不同菌落之间的界面在正向和反向相变中起引发剂的主要作用。将马氏体转变与马氏体构型联系起来,揭示了影响该转变的可能机制,并为在不同应用中充分利用形状记忆Heuslers的微观结构工程铺平了道路。

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