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Next generation high density three-dimensional magnetic recording systems.

机译:下一代高密度三维磁记录系统。

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摘要

This work is the first work using patterned soft underlayers in multilevel three-dimensional vertical magnetic data storage systems. The motivation stems from an exponentially growing information stockpile, and a corresponding need for more efficient storage devices with higher density. The world information stockpile currently exceeds 150EB (ExaByte=1x1018Bytes); most of which is in analog form. Among the storage technologies (semiconductor, optical and magnetic), magnetic hard disk drives are posed to occupy a big role in personal, network as well as corporate storage. However; this mode suffers from a limit known as the Superparamagnetic limit; which limits achievable areal density due to fundamental quantum mechanical stability requirements. There are many viable techniques considered to defer superparamagnetism into the 100's of Gbit/in2 such as: patterned media, Heat-Assisted Magnetic Recording (HAMR), Self Organized Magnetic Arrays (SOMA), antiferromagnetically coupled structures (AFC), and perpendicular magnetic recording. Nonetheless, these techniques utilize a single magnetic layer; and can thusly be viewed as two-dimensional in nature. In this work a novel three-dimensional vertical magnetic recording approach is proposed. This approach utilizes the entire thickness of a magnetic multilayer structure to store information; with potential areal density well into the Tbit/in2 regime.; There are several possible implementations for 3D magnetic recording; each presenting its own set of requirements, merits and challenges. The issues and considerations pertaining to the development of such systems will be examined, and analyzed using empirical and numerical analysis techniques. Two novel key approaches are proposed and developed: (1) Patterned soft underlayer (SUL) which allows for enhanced recording of thicker media, (2) A combinatorial approach for 3D media development that facilitates concurrent investigation of various film parameters on a predefined performance metric. A case study is presented using combinatorial overcoats of Tantalum and Zirconium Oxides for corrosion protection in magnetic media.; Feasibility of 3D recording is demonstrated, and an emphasis on 3D media development is emphasized as a key prerequisite. Patterned SUL shows significant enhancement over conventional "un-patterned" SUL, and shows that geometry can be used as a design tool to achieve favorable field distribution where magnetic storage and magnetic phenomena are involved.
机译:这项工作是在多层三维垂直磁数据存储系统中使用带图案的软底层的第一项工作。动机源于不断增长的信息库存,以及对更高密度的更高效存储设备的相应需求。当前,世界信息库存超过150EB(ExaByte = 1x1018Bytes);其中大多数是模拟形式。在存储技术(半导体,光和磁)中,磁硬盘驱动器在个人,网络以及公司存储中占据着重要的位置。然而;该模式受到称为超顺磁极限的限制;由于基本的量子力学稳定性要求,这限制了可达到的面密度。考虑了许多可行的技术来将超顺磁性推迟到Gbit / in2的100年代,例如:图案化介质,热辅助磁记录(HAMR),自组织磁阵列(SOMA),反铁磁耦合结构(AFC)和垂直磁记录。然而,这些技术利用单个磁性层。因此本质上可以看作是二维的。在这项工作中,提出了一种新颖的三维垂直磁记录方法。这种方法利用了磁性多层结构的整个厚度来存储信息。潜在的面密度很好地进入了Tbit / in2机制。 3D磁记录有几种可能的实现方式。每一个都有自己的一套要求,优点和挑战。与此类系统开发有关的问题和考虑因素将通过经验和数值分析技术进行检查和分析。提出并开发了两种新颖的关键方法:(1)允许增强对较厚介质的记录的图案化软底层(SUL),(2)用于3D介质开发的组合方法,该方法有助于在预定义的性能指标上同时研究各种胶片参数。以钽和氧化锆的组合外涂层用于磁性介质的腐蚀防护为例。演示了3D录制的可行性,并强调了3D媒体开发的重要性。图案化的SUL与常规的“非图案化” SUL相比显示出显着增强,并且显示出几何形状可以用作一种设计工具,以实现涉及磁存储和磁现象的有利场分布。

著录项

  • 作者

    Hijazi, Yazan Said.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 194 p.
  • 总页数 194
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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