首页> 外国专利> THERMOMAGNETIC RECORDING METHOD APPLYING POWER MODULATED LASER ON A MAGNETICALLY COUPLED MULTI-LAYER STRUCTURE OF PERPENDICULAR ANISOTROPY MAGNETIC FILM

THERMOMAGNETIC RECORDING METHOD APPLYING POWER MODULATED LASER ON A MAGNETICALLY COUPLED MULTI-LAYER STRUCTURE OF PERPENDICULAR ANISOTROPY MAGNETIC FILM

机译:在正交各向异性磁膜的多层多层结构的磁耦合多层结构中应用功率调制激光的热磁记录方法

摘要

A thermomagnetic recording method is disclosed using a thermomagnetic recording medium where first, second and third magnetic thin films (1-3) each formed of rare-earth and transition metals are sequentially superposed to form layers in a magnetically coupled manner. The recording is carried out by heating the thermomagnetic recording medium under a predetermined magnetic field perpendicular to the film plane thereof while selectively modulating, in accordance with data to be recorded, a first heating state at a first temperature T1 substantially above the Curie point Tc1 of the first magnetic thin film (1) and adequate to hold the sublattice magnetization of the transition metal of the second magnetic thin film in a predetermined direction, and a second heating state at a second temperature T2 substantially above the Curie point Tc1 and adequate to invert the sublattice magnetization of the transition metal of the second magnetic thin film (2) to the reverse of the predetermined direction. In a cooling step subsequent to the first and second heating states, maintaining the sublattice magnetization of the third magnetic thin film in a predetermined direction while orienting the sublattice magnetization of said second magnetic thin film to be directionally coincident with that of the third magnetic thin film at a temperature below the first temperature T1 without directionally inverting the sublattice magnetization of the first magnetic thin film (1).
机译:公开了一种使用热磁记录介质的热磁记录方法,其中分别由稀土金属和过渡金属形成的第一,第二和第三磁性薄膜(1-3)顺序地叠置以磁耦合的方式形成层。通过在垂直于其膜平面的预定磁场下加热热磁记录介质,同时根据要记录的数据在基本上高于居里点Tc1的第一温度T1下选择性地调节第一加热状态,来进行记录。第一磁性薄膜(1),并且足以将第二磁性薄膜的过渡金属的亚晶格磁化保持在预定方向上,并且具有在第二温度T2上的第二加热状态,第二温度T2基本上高于居里点Tc1,并且足以反转第二磁性薄膜(2)的过渡金属向预定方向的相反方向的亚晶格磁化。在第一和第二加热状态之后的冷却步骤中,将第三磁性薄膜的亚晶格磁化保持在预定方向上,同时使所述第二磁性薄膜的亚晶格磁化定向为与第三磁性薄膜的亚晶格磁化方向一致。在低于第一温度T1的温度下,第一磁性薄膜(1)的亚晶格磁化方向没有发生反转。

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