电荷积累介导的双相纳米结构体系中纳米包裹体形成诱导的巨非均相磁致伸缩

Yijun Chen, Z. Fu, Yuye Wu, Yichen Xu, Yu Xiao, Jingmin Wang, Ruifeng Zhang, Chengbao Jiang
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引用次数: 17

摘要

近年来,双相纳米结构体系中巨磁致伸缩的根本原因一直是人们讨论的热点。先前的研究表明,四方纳米包裹体的形成导致局部磁晶各向异性的增大,导致磁弹性耦合系数的增强,这被认为是促进磁致伸缩的原因。作为磁致伸缩的另一个关键因素,纳米包裹体对晶格弹性常数的影响仍然不明显。在这项工作中,我们提出了一种基于二元和稀土掺杂FeGa单晶的实验和理论结果的机制。微量稀土原子的掺杂有效地增加了A2基体中纳米包裹体的密度,因为稀土原子的高选择性使得它们与Fe原子而不是Ga原子具有更强的键合作用。从序列上看,相对于ς 11,弹性常数ς 12随着四边形纳米内含物密度的增加而显著增加,导致磁致伸缩显著增强,这是由于磁致伸缩(λ 001)与ς 11 - ς 11成反比关系。由于纳米包裹体引起晶格软化,稀土掺杂单晶的磁致伸缩率达到390ppm。该模型揭示了稀土原子对FeGa单晶磁致伸缩的贡献,为开发新一代双相磁致伸缩材料以达到前所未有的磁致伸缩水平奠定了基础。
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Giant Heterogeneous Magnetostriction Induced by Charge Accumulation-Mediated Nanoinclusion Formation in Dual-Phase Nanostructured Systems
The fundamental origin of the giant magnetostriction in the dual-phase nanostructured systems is under energetic discussion in recent years. Previous studies have revealed that the formation of tetragonal nanoinclusions induced the enlargement in local magnetocrystalline anisotropy, leading to a strengthened magneto-elastic coupling coefficient, which was considered to promote magnetostriction. As the other key factor of magnetostriction, the influence of the nanoinclusions on the elastic constants of the lattices is still unnoticeably. In this work, we propose a mechanism based on the experimental and theoretical results of binary and rare-earth (RE) doped FeGa single-crystals. Doping traces of RE atoms effectively increase the density of nanoinclusions in the A2 matrix, because of the high selectivity of RE atoms so that they possess stronger bonding interaction with Fe atoms rather than Ga atoms. As a sequence, the elastic constant ς 12 significantly increases with the rising density of tetragonal nanoinclusions as opposed to a constant ς 11, resulting in a remarkable enhancement in magnetostriction due to the inversely proportional relationship between magnetostriction (λ 001) and ς 11 - ς 11. A superior magnetostriction of 390 ppm is obtained in the RE-doped single-crystal due to the lattice softening induced by the nanoinclusions. This model sheds light into the contribution of RE atoms to magnetostriction in FeGa single-crystals, and establishes a foundation for developing new-generation dual-phase magnetostrictive materials to achieve unprecedented levels of magnetostriction.
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