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Efficiently reducing transition curvature in heat-assisted magnetic recording with state-of-the-art write heads

机译:使用最先进的写头有效降低热辅助磁记录中的过渡曲率

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摘要

Curvatures of bit transitions on granular media are a serious problem for the read-back process. We address this fundamental issue and propose a possibility to efficiently reduce transition curvatures with state-of-the-art heat-assisted magnetic recording heads. We compare footprints of conventional with those of the proposed head design on different media, consisting of exchange coupled and single phase grains. Additionally, we investigate the impact of various recording parameters, such as the full width at half maximum (FWHM) of the applied heat pulse and the coercivity gradient near the write temperature of the recording grains. The footprints are calculated with a coarse grained model, based on the Landau-Lifshitz-Bloch equation. The presented simulations show a transition curvature reduction of up to 40%, in the case of a medium with exchange coupled grains and a heat pulse with a FWHM of 40 nm. We further give the reason for the straightening of the bit transitions, by means of basic considerations with regard to the effective recording time window of the write process. Besides the transition curvature reduction, the proposed head design yields an improvement of the transition jitter in both down-track and off-track directions.
机译:对于回读过程,粒度介质上的位转换的曲率是一个严重的问题。我们解决了这个基本问题,并提出了使用最新的热辅助磁记录头有效降低过渡曲率的可能性。我们比较了传统和建议的喷头设计在不同介质上的足迹,这些足迹由交换耦合和单相晶粒组成。此外,我们研究了各种记录参数的影响,例如施加的热脉冲的半高全宽(FWHM)和记录晶粒的写入温度附近的矫顽力梯度。根据Landau-Lifshitz-Bloch方程,使用粗粒度模型计算足迹。在具有交换耦合晶粒的介质和FWHM为40 nm的热脉冲的介质中,提出的模拟结果显示,过渡曲率降低了40%。通过关于写过程的有效记录时间窗口的基本考虑,我们进一步给出了位过渡变直的原因。除了减小过渡曲率之外,所提出的磁头设计还改善了在下磁道和离磁道方向上的过渡抖动。

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  • 来源
    《Applied Physics Letters》 |2017年第18期|182406.1-182406.5|共5页
  • 作者单位

    Institute of Solid State Physics, TU Wien, 1040 Vienna, Austria and Institute of Analysis and Scientific Computing, TU Wien, 1040 Vienna, Austria;

    Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, Faculty of Physics, University of Vienna, Boltzmanngasse 5, 1090 Vienna, Austria;

    Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, Faculty of Physics, University of Vienna, Boltzmanngasse 5, 1090 Vienna, Austria;

    Christian Doppler Laboratory for Advanced Magnetic Sensing and Materials, Faculty of Physics, University of Vienna, Boltzmanngasse 5, 1090 Vienna, Austria;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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