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The formation of high-coercivity, oriented, nanophase cobalt precipitates in Al_2O_3 single crystals by ion implantation

机译:通过离子注入,形成高矫顽力,取向的纳米钴沉淀物在Al_2O_3单晶中沉淀

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Ion-implantation and thermal-processing methods have been used to form nanophase magnetic precipitates of metallic cobalt that are embedded in the near-surface region of single crystals of Al_2O_3. The Co precipitates are isolated, single-crystal particles that are crystallographically oriented with respect to the host Al_2O_3 lattice. Embedded nanophase Co precipitates were formed by the implantation of Co~+ at an energy of 140 keV and a dose of 8 x 10~(16) ions/cm~2 followed by annealing in a reducing atmosphere. The implanted/annealed Co depth profile, particle size distributions and shapes, and the orientational relationship between the nanophase precipitates and the host crystal lattice were determined using RBS/channeling, transmission electron microscopy, and x-ray diffraction. Magneto-optical effects arising from Co precipitates formed in the near-surface region of Al_2O_3 were observed and characterized using magnetic circular dichroism. Magnetic properties of the Co-particle/host nanocomposites were investigated in the temperature range of 77 to 295 K in applied fields of up to 10 kG using a superconducting quantum interference device (SQUID) magnetometer. Implantation of the Co particles by Pt or Xe ions produced a large anisotropic increase in their coercivity. Accordingly, these magnetic nanoparticle systems may be of interest for magnetic data storage applications. Details of the magnetic properties of the Co/Al_2O_3 nanocomposites including their retnetivity, coercivity, saturation field, and magnetic anisotropy are presented.
机译:离子注入和热处理方法已用于形成嵌入Al_2O_3的单晶的近表面区域中的金属钴的纳米磁性沉淀物。分离Co沉淀物,相对于宿主Al_2O_3晶格在晶体化上的单晶颗粒。通过在140keV的能量下植入CO〜+的嵌入式纳米级Co沉淀物,其剂量为8×10〜(16)离子/ cm〜2,然后在还原气氛中退火。使用RBS /沟道,透射电子显微镜和X射线衍射测定植入/退火的CO深度曲线,粒度分布和形状,纳米沉淀物与宿主晶格之间的取向关系。观察到在Al_2O_3的近表面区域中形成的Co沉淀产生的磁光效应,并使用磁性圆形二色性表征。使用超导量子干涉装置(鱿鱼)磁力计在高达10kg的施加场的温度范围内研究了共粒子/宿主纳米复合材料的磁性。通过Pt或Xe离子植入CO颗粒产生的矫顽力大的各向异性增加。因此,这些磁性纳米颗粒系统可能对磁数据存储应用感兴趣。呈现了CO / Al_2O_3纳米复合材料的磁性的细节,包括它们的耐受性,矫顽力,饱和度和磁各向异性。

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