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Experimental Study on Smear Characteristics Upon Laser Heating in Air and Helium in Heat-Assisted Magnetic Recording

机译:热辅助磁记录中的空气和氦激光加热时涂抹特性的实验研究

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摘要

In heat-assisted magnetic recording (HAMR) technology, it is necessary to heat the magnetic layer of disks at a temperature that exceeds the Curie temperature (Tc). When the disk is laser irradiated, the lubricating film and diamond-like carbon (DLC) protective film on the disk surface are heated at high temperatures (300 °C–500 °C). If the lubricant film, DLC thin film, or organic contamination on the disk surface evaporates or thermally decomposes upon laser heating, it adheres as a smear on the slider surface. In view of the negative effect exerted thereof, the solution to this problem is, therefore, critical for the successful application of HAMR. Furthermore, recently developed helium-enclosed hard disk drives are currently utilized in industries. It is, thus, expected that the aforementioned novel HAMR technology will be employed in helium-enclosed drives. In this study, the effects of DLC thin films on the smear characteristics upon the laser heating of disks in air and He are experimentally investigated, and the manner with which these films on the disk surface affects the smear characteristics is clarified. Moreover, the technical countermeasures necessary to reduce the smear with respect to the hydrocarbons from the DLC thin films in HAMR are elucidated and proposed in this article. Simply put, the technical countermeasures depend on the heating temperature, and the use of a mixture of He and air or oxygen gases is found to be effective. This method, however, may not be significantly useful when the heating temperatures exceed 500 °C.
机译:在热辅助磁记录(HAMR)技术中,必须在超过居里温度(TC)的温度下加热磁盘的磁性层。当盘被照射时,盘表面上的润滑膜和金刚石碳(DLC)保护膜在高温(300℃-500℃)下加热。如果润滑膜,DLC薄膜或盘表面上的有机污染蒸发或在激光加热时热分解,则它将其粘附在滑块表面上的涂片。鉴于其施加的负面效应,因此对该问题的解决方案是对哈姆尔的成功应用至关重要。此外,最近开发的氦封闭的硬盘驱动器目前在行业中使用。因此,预期上述新的HAMR技术将在氦气封闭的驱动器中使用。在该研究中,DLC薄膜对空气中的磁盘激光加热时的涂抹特性的影响,以及实验研究的方式,阐明了磁盘表面上的这些薄膜的方式影响涂片特性。此外,在本文中阐明并提出了在本文中阐明了与HURR中的DLC薄膜烃相对于烃类烃所需的技术对策。简单地说,技术对策取决于加热温度,发现他和空气或氧气的混合物有效。然而,当加热温度超过500℃时,该方法可能不会显着有用。

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