...
首页> 外文期刊>RSC Advances >Influence of high energy milling on the microstructure and magnetic properties of the Al–Cu–Fe phases: the case of the i-Al64Cu23Fe13 quasicrystalline and the ω-Al70Cu20Fe10 crystalline phases
【24h】

Influence of high energy milling on the microstructure and magnetic properties of the Al–Cu–Fe phases: the case of the i-Al64Cu23Fe13 quasicrystalline and the ω-Al70Cu20Fe10 crystalline phases

机译:高能铣削对Al-Cu-Fe阶段的微观结构和磁性的影响:I-Al64Cu23Fe13逐晶和ω-Al70cu20Fe10结晶相的情况

获取原文
           

摘要

The effect of mechanical milling in i-Al _(64) Cu _(23) Fe _(13) quasicrystalline and ω-Al _(70) Cu _(20) Fe _(10) crystalline phases is systematically investigated in the present work. The Al–Cu–Fe samples were obtained by arc furnace technique and then nanostructured by means of mechanical milling. The results indicate that the solid samples present a weak ferromagnetic behavior at 300 K, showing a saturation magnetization of 0.124 emu g ~(?1) for the icosahedral phase (i-phase) and 0.449 emu g ~(?1) for the tetragonal phase (ω-phase). These small values could be an indication that only a few percentage of Fe atoms carry magnetic moment. The magnetic response in the nanostructured ω-phase increases up to 3.5 times higher than its corresponding solid counterpart. Whereas for the i-phase this increment is about 16 times higher. Moreover, the speed of the variation of the studied physical parameters after reducing the average grain size has been obtained from the exponent ( α ) of a power law fit of the experimental data. The values of α , corresponding to the magnetic response, are slightly different in each phase, which should be related to the different chemical composition and/or the type of long range order. Additionally, we also search for a critical grain size. However, this critical value has not been observed in the studied samples.
机译:在本发明地研究了机械研磨在I-Al _(64)Cu _(23)Cu _(23)Cu _(23)的拟晶和ω-Al _(70)Cu _(20)Fe _(10)结晶相的影响工作。通过电弧炉技术获得Al-Cu-Fe样品,然后通过机械研磨纳米结构。结果表明,固体样品在300 k下呈现弱铁磁性行为,显示出针对四角型(I相)的0.124 emu g〜(α1)的饱和磁化强度为0.449 emu g〜(α1)相(ω相)。这些小值可能是一个只有几个百分比的Fe原子携带磁矩。纳米结构ω相的磁响应增加到比其相应的固体对应高的3.5倍。而对于i-阶段,这种增量率高约16倍。此外,已经从实验数据的电力定律拟合的指数(α)获得了在降低平均晶粒尺寸之后研究了所研究的物理参数的变化的速度。对应于磁响应的α的值在每个阶段略有不同,这应该与不同的化学成分和/或长距离阶的类型有关。此外,我们还搜索了临界粒度。然而,在研究的样本中尚未观察到这种临界值。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号