English

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

Other Condensed Matter 2018-07-04 v1 Materials Science

Abstract

Bit Patterned Media (BPM) for magnetic recording provide a route to densities >1Tb/in2>1 Tb/in^2 and circumvents many of the challenges associated with conventional granular media technology. Instead of recording a bit on an ensemble of random grains, BPM uses an array of lithographically defined isolated magnetic islands, each of which stores one bit. Fabrication of BPM is viewed as the greatest challenge for its commercialization. In this article we describe a BPM fabrication method which combines e-beam lithography, directed self-assembly of block copolymers, self-aligned double patterning, nanoimprint lithography, and ion milling to generate BPM based on CoCrPt alloys. This combination of fabrication technologies achieves feature sizes of <10nm<10 nm, significantly smaller than what conventional semiconductor nanofabrication methods can achieve. In contrast to earlier work which used hexagonal close-packed arrays of round islands, our latest approach creates BPM with rectangular bitcells, which are advantageous for integration 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 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 switching field distribution is discussed, and a new method for growing BPM islands on a patterned template is presented. New recording results at 1.6Td/in21.6 Td/in^2 (teradot/inch2{}^2, roughly equivalent to 1.3Tb/in21.3 Tb/in^2) demonstrate a raw error rate <102<10^{-2}, 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.

Keywords

Cite

@article{arxiv.1503.06664,
  title  = {Bit Patterned Magnetic Recording: Theory, Media Fabrication, and Recording Performance},
  author = {Thomas R. Albrecht and Hitesh Arora and Vipin Ayanoor-Vitikkate and Jean-Marc Beaujour and Daniel Bedau and David Berman and Alexei L. Bogdanov and Yves-Andre Chapuis and Julia Cushen and Elizabeth E. Dobisz and Gregory Doerk and He Gao and Michael Grobis and Bruce Gurney and Weldon Hanson and Olav Hellwig and Toshiki Hirano and Pierre-Olivier Jubert and Dan Kercher and Jeffrey Lille and Zuwei Liu and C. Mathew Mate and Yuri Obukhov and Kanaiyalal C. Patel and Kurt Rubin and Ricardo Ruiz and Manfred Schabes and Lei Wan and Dieter Weller and Tsai-Wei Wu and En Yan},
  journal= {arXiv preprint arXiv:1503.06664},
  year   = {2018}
}

Comments

44 pages

R2 v1 2026-06-22T08:59:36.676Z