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Nanoscale magneto-structural coupling in as-deposited and freestanding single-crystalline Fe7Pd3 ferromagnetic shape memory alloy thin films

机译:沉积和独立的单晶Fe7Pd3铁磁形状记忆合金薄膜中的纳米尺度磁结构耦合

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Ferromagnetic shape memory alloys are characterized by strong magneto-mechanical coupling occurring at the atomic scale causing large magnetically inducible strains at the macroscopic level. Employing combined atomic and magnetic force microscopy studies at variable temperature, we systematically explore the relation between the magnetic domain pattern and the underlying structure for as-deposited and freestanding single-crystalline Fe7Pd3 thin films across the martensite–austenite transition. We find experimental evidence that magnetic domain appearance is strongly affected by the presence and absence of nanotwinning. While the martensite–austenite transition upon temperature variation of as-deposited films is clearly reflected in topography by the presence and absence of a characteristic surface corrugation pattern, the magnetic domain pattern is hardly affected. These findings are discussed considering the impact of significant thermal stresses arising in the austenite phase. Freestanding martensitic films reveal a hierarchical structure of micro- and nanotwinning. The associated domain organization appears more complex, since the dominance of magnetic energy contributors alters within this length scale regime.
机译:铁磁形状记忆合金的特征在于在原子尺度上发生强的磁机械耦合,从而在宏观水平上引起较大的磁感应应变。通过在可变温度下进行原子显微镜和磁力显微镜相结合的研究,我们系统地研究了沉积和独立的单晶Fe 7 Pd 3 < / SUB>薄膜穿过马氏体-奥氏体转变。我们发现实验证据表明,磁畴外观受到纳米孪晶存在与否的强烈影响。尽管沉积和沉积膜温度变化时马氏体-奥氏体转变在表面形貌上清楚地反映了特征波纹的存在与不存在,但磁畴图几乎不受影响。考虑到奥氏体相中产生的明显热应力的影响,讨论了这些发现。独立的马氏体薄膜揭示了微观和纳米孪生的层次结构。由于磁能贡献者的主导权在此长度尺度范围内发生变化,因此相关的磁畴组织显得更为复杂。

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