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Bit-Patterned Magnetic Recording: Theory, Media Fabrication, and Recording Performance

IEEE Transactions on Magnetics · 2015 · Vol. 51(5) · pp. 1–42
T. R. AlbrechtHitesh AroraVipin Ayanoor-VitikkateJ.-M. L. BeaujourDaniel BedauDavid BermanA. L. BogdanovY.A. ChapuisJulia D. CushenElizabeth E. DobiszGregory S. DoerkHe GaoM. GrobisB. A. GurneyWeldon HansonOlav HellwigToshiki HiranoPierre‐Olivier JubertDan KercherJeffrey LilleZuwei LiuC. Mathew MateYuri N. ObukhovKanaiyalal C. PatelK. RubinRicardo RuizM.E. SchabesLei WanD. WellerTsai-Wei WuEn Yang

Abstract

Bit-patterned media (BPM) for magnetic recording provides a route to thermally stable data recording at >1 Tb/in <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> and circumvents many of the challenges associated with extending conventional granular media technology. Instead of recording a bit on an ensemble of random grains, BPM comprises a well-ordered array of lithographically patterned isolated magnetic islands, each of which stores 1 bit. Fabrication of BPM is viewed as the greatest challenge for its commercialization. In this paper, we describe a BPM fabrication method that combines rotary-stage e-beam lithography, directed self-assembly of block copolymers, self-aligned double patterning, nanoimprint lithography, and ion milling to generate BPM based on CoCrPt alloy materials at densities up to 1.6 Td/in <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> . This combination of novel fabrication technologies achieves feature sizes of <;10 nm, which is significantly smaller than what conventional nanofabrication methods used in semiconductor manufacturing can achieve. In contrast to earlier work that used hexagonal arrays of round islands, our latest approach creates BPM with rectangular bit cells, which are advantageous for the integration of BPM with existing hard disk drive technology. The advantages of rectangular bits are analyzed from a theoretical and modeling point of view, and system integration requirements, such as provision of servo patterns, implementation of write synchronization, and providing for a stable head-disk interface, are addressed in the context of experimental results. Optimization of magnetic alloy materials for thermal stability, writeability, and tight switching field distribution is discussed, and a new method for growing BPM islands from a specially patterned underlayer-referred to as templated growth-is presented. New recording results at 1.6 Td/in <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> (roughly equivalent to 1.3 Tb/in <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">2</sup> ) demonstrate a raw error rate <;10 <sup xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink">-2</sup> , which is consistent with the recording system requirements of modern hard drives. Extendibility of BPM to higher densities and its eventual combination with energy-assisted recording are explored.

Block Copolymer Self-AssemblyMagnetic properties of thin filmsFerroelectric and Negative Capacitance DevicesPatterned mediaFabricationMaterials scienceNanolithographyComputer scienceNanoimprint lithographyLithographyContext (archaeology)PhotolithographyOptoelectronics
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References
Nanofabricated and self-assembled magnetic structures as data storage media
Journal of Physics D Applied Physics · 2005 · 795 citations
Microwave Assisted Magnetic Recording
IEEE Transactions on Magnetics · 2007 · 563 citations
Atomic Layer Deposition: An Overview
Chemical Reviews · 2009 · 5,574 citations
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Bit-Patterned Magnetic Recording: Theory, Media Fabrication, and Recording Performance · Scinovex