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Magnetostriction enhancement in ferromagnetic strain glass by approaching the crossover of martensite

机译:接近马氏体的交叉增强铁磁应变玻璃的磁致伸缩

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摘要

Owing to its unique nanostructure with nanosized strain domains embedded in the austenite matrix, ferromagnetic strain glass has recently been found to yield low-field large magnetostriction, providing an important principle for designing magnetostrictive materials. Considering that magnetostriction maximizes in the vicinity of the strain glass transition temperature, T_g that is usually below room temperature; it has inspired the search for a feasible approach to further enhance room temperature magnetostriction from an application point of view. Here, we report that approaching the martensite crossover through applying proper stress during annealing can effectively enhance room temperature magnetostriction of a random polycrystalline Fe_(67.7)Pd_(32.3) strain glass alloy with T_g of 133 K from 73 to 95 ppm by ~30%. The comparative results reveal that annealing with higher stress, e.g., 15MPa, will deteriorate magnetostriction performance due to stress-induced martensites. Further transmission electron microscopy study reveals that enhanced magnetostriction is due to slightly enlarged strain nano-domains because the proper bias stress provides an extra driving force toward the martensite and helps to overcome the kinetic limitation, which may be a universal approach to achieve large magnetostriction in ferromagnetic strain glass.
机译:由于其独特的纳米结构,其奥氏体基体中嵌入了纳米尺寸的应变域,因此最近发现铁磁应变玻璃可产生低磁场的大磁致伸缩,为设计磁致伸缩材料提供了重要原理。考虑到在应变玻璃转变温度T_g(通常低于室温)附近,磁致伸缩最大。从应用的角度来看,它激发了寻找可行的方法以进一步增强室温磁致伸缩的灵感。在这里,我们报道通过在退火过程中施加适当的应力来接近马氏体相交可以有效地增强T_g为133 K的无定形多晶Fe_(67.7)Pd_(32.3)应变玻璃合金的室温磁致伸缩,从73 ppm到95 ppm约30% 。比较结果表明,由于应力诱发的马氏体,具有较高应力例如15MPa的退火将恶化磁致伸缩性能。进一步的透射电子显微镜研究表明,磁致伸缩的增强是由于应变纳米域的略微扩大,因为适当的偏应力为马氏体提供了额外的驱动力,并有助于克服动力学的局限性,这可能是实现大磁致伸缩的通用方法。铁磁应变玻璃。

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  • 来源
    《Applied Physics Letters》 |2020年第7期|072402.1-072402.5|共5页
  • 作者单位

    Frontier Institute of Science and Technology State Key Laboratory for Mechanical Behavior of Materials and MOE Key Laboratory for Nonequilibrium Synthesis and Modulation of Condensed Matter Xi'an Jiaotong University Xi'an Shaanxi 710049 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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