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Nanostructured magnetic recording media by patterning and glancing angle deposition.

机译:通过图案化和掠射角沉积形成的纳米结构磁记录介质。

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摘要

In order to solve the trilemma problems that perpendicular magnetic recording is facing, advanced approaches such as heat assisted magnetic recording and bit patterned media are being intensively researched. In this work, high coercivity magnetic materials have been studied in the form of nanostructured Co/Pd and FeB/Pt multilayers. Arrays of uniformly spaced nanopillars over large areas were formed by utilizing block copolymer patterning. Uniform nanorods were formed by glancing angle deposition, a unique single-step approach to bit-patterned media.;First, a detailed study on Co/Pd multilayered thin films was carried out to optimize the magnetic properties with respect to the thickness ratio, number of bilayers and seed layers. Then a statistical optimization of the patterning of Co/Pd multilayers by nanosphere lithography and block copolymer templating was carried out. The highest measured perpendicular anisotropy for Co/Pd films was 2.8 x 106 ergs/cm3. However, many of the M-H loops for Co/Pd were not saturated at the maximum field of 18 kOe, so the perpendicular anisotropy approaches 107 ergs/cm3. A unique single-step approach to nanostructuring these Co/Pd multilayers was developed: glancing angle deposition (GLAD), which produced Co/Pd nanorods with a coercivity as high as 2.9 kOe, a 123% increase over the flat multilayers.;For deposition of FeBPt based granular media, two different techniques were used to sputter FeB/Pt multilayers. A finely alternated layered structure was proven to be more effective in forming L10 structured B-doped FePt. The FeBPt films thus formed were also patterned by block copolymer templating, and their magnetic properties were studied as a function of ion milling and annealing conditions. The highest coercivity achieved for patterned and annealed B-doped FePt films was 14 kOe.
机译:为了解决垂直磁记录面临的三难问题,正在深入研究诸如热辅助磁记录和位图案化介质的先进方法。在这项工作中,已经研究了以纳米结构Co / Pd和FeB / Pt多层形式存在的高矫顽磁性材料。利用嵌段共聚物构图形成大面积均匀分布的纳米柱阵列。通过掠角沉积形成均匀的纳米棒,这是一种独特的单步处理位图介质的方法。首先,对Co / Pd多层薄膜进行了详细研究,以优化磁性能的厚度比,数量双层和种子层。然后通过纳米球光刻和嵌段共聚物模板对Co / Pd多层的图案进行了统计优化。 Co / Pd膜的最高垂直各向异性测量值为2.8 x 106 ergs / cm3。但是,Co / Pd的许多M-H回路在18 kOe的最大电场下并未饱和,因此垂直各向异性接近107 ergs / cm3。开发了一种独特的纳米结构化这些Co / Pd多层膜的单步方法:掠射角沉积(GLAD),它产生的矫顽力高达2.9 kOe的Co / Pd纳米棒,比平坦的多层膜高123%。在基于FeBPt的颗粒介质中,使用了两种不同的技术来溅射FeB / Pt多层。事实证明,精细交替的分层结构在形成L10结构的B掺杂FePt方面更有效。如此形成的FeBPt薄膜也通过嵌段共聚物模板进行了构图,并研究了其磁性能随离子铣削和退火条件的变化。图案化和退火的B掺杂FePt薄膜获得的最高矫顽力为14 kOe。

著录项

  • 作者

    Su, Hao.;

  • 作者单位

    The University of Alabama.;

  • 授予单位 The University of Alabama.;
  • 学科 Materials science.;Nanotechnology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 141 p.
  • 总页数 141
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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