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磁性形状记忆合金中纳米孪晶马氏体的磁性

Magnetism of nanotwinned martensite in magnetic shape memory alloys.

作者信息

Golub V, L'vov V A, Salyuk O, Barandiaran J M, Chernenko V A

机构信息

Institute of Magnetism NASU and MESU, Kyiv 03142, Ukraine.

Taras Shevchenko National University of Kyiv, Kyiv 01601, Ukraine.

出版信息

J Phys Condens Matter. 2020 May 6;32(31). doi: 10.1088/1361-648X/ab7f69.

Abstract

Heusler-type magnetic shape memory alloys (MSMAs) exhibit a martensitic transformation (MT) accompanied by a complex magnetic reordering, strongly affected by an intricate martensitic microstructure. The hierarchic twin structure of martensite, formed as a result of minimization of elastic energy down to atomic scale, is under intensive study nowadays. On the other hand, the much more sophisticated problem of the relationship between nanoscale twin structure and the magnetism in MSMAs has being tackled only recently. It will be shown in this topical review that the nanotwin structure affects not only the basic magnetic parameters of MSMAs, but also can change qualitatively its magnetic nature and related magnetodynamic and magnetoresistance properties. This will be primarily illustrated, both theoretically and experimentally, on the prototype Ni-Mn-Ga and Ni(Co)-Mn-Sn MSMAs in the form of epitaxial thin films, but the conclusions are also valid for other Heusler-type MSMAs, both in the form of thin films, ribbons and bulk single crystals and polycrystals. The following new and remarkable phenomena will be highlighted. (i) A strong ferromagnetic exchange coupling is observed between the submicron twin components in Ni-Mn-Ga ferromagnetic martensite. It results in the modification of the average magnetic anisotropy and the formation of a non-collinear magnetic structure, whereby a negative magnetoresistance appears in a wide temperature range. (ii) Weak antiferromagnetic coupling occurs between the ferromagnetically ordered twin components in Ni(Co)-Mn-Sn martensite. This coupling enabled to explain the exchange bias and magnetic resonance spectra in the same terms as for artificial antiferromagnetically coupled multilayered structures.

摘要

赫斯勒型磁形状记忆合金(MSMA)表现出马氏体相变(MT),同时伴随着复杂的磁性重排,这受到复杂马氏体微观结构的强烈影响。由于弹性能量在原子尺度上最小化而形成的马氏体层次孪晶结构,如今正受到深入研究。另一方面,关于纳米尺度孪晶结构与MSMA中磁性之间关系这一更为复杂的问题,直到最近才开始着手解决。在这篇专题综述中将表明,纳米孪晶结构不仅影响MSMA的基本磁性参数,还能在性质上改变其磁性以及相关的磁动力学和磁阻特性。这将主要通过理论和实验,以外延薄膜形式的典型Ni-Mn-Ga和Ni(Co)-Mn-Sn MSMA为例进行说明,但所得结论对于其他赫斯勒型MSMA同样有效,无论是薄膜、带材还是块状单晶和多晶形式。将突出以下新的显著现象。(i)在Ni-Mn-Ga铁磁马氏体的亚微米孪晶组分之间观察到强铁磁交换耦合。这导致平均磁各向异性的改变以及形成非共线磁结构,从而在很宽的温度范围内出现负磁阻。(ii)在Ni(Co)-Mn-Sn马氏体的铁磁有序孪晶组分之间发生弱反铁磁耦合。这种耦合能够用与人工反铁磁耦合多层结构相同的方式来解释交换偏置和磁共振谱。

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