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    • 64. 发明授权
    • Magneto-optical recording medium having a plurality of magnetic layers
    • 具有多个磁性层的磁光记录介质
    • US5768218A
    • 1998-06-16
    • US803274
    • 1997-02-20
    • Junichiro NakayamaYoshiteru MurakamiJunji HirokaneAkira Takahashi
    • Junichiro NakayamaYoshiteru MurakamiJunji HirokaneAkira Takahashi
    • G11B11/10G11B11/105G11B11/00
    • G11B11/10584G11B11/10586G11B11/10506G11B11/10515G11B11/10521
    • A magneto-optical recording medium has a transparent substrate, a first magnetic layer, first intermediate layer, a second magnetic layer, and a third magnetic layer provided in this order. The first magnetic layer has an in-plane magnetization at room temperature, while a transition from the in-plane magnetization to a perpendicular magnetization occurs to the first magnetic layer with a temperature rise. The first intermediate layer is made of a non-magnetic substance. The second magnetic layer is a film having a perpendicular magnetization. The third magnetic layer is a film having a perpendicular magnetization, has a coercive force smaller than that of the second magnetic layer at room temperature, and has a Curie temperature higher than that of the second magnetic layer. The light intensity modulation overwriting method is applicable to the magneto-optical recording medium thus arranged, superior reproduction signal characteristics can be obtained with respect to this magneto-optical recording medium, and reproduction can be carried out with respect to the recording medium even though it has recording bits whose each diameter is smaller than that of a light beam. Thus it is possible to provide the magneto-optical recording medium suitable for high density recording.
    • 磁光记录介质具有依次设置的透明基板,第一磁性层,第一中间层,第二磁性层和第三磁性层。 第一磁性层在室温下具有平面内的磁化强度,而从第一磁性层的温度上升发生从面内磁化向垂直磁化的转变。 第一中间层由非磁性物质制成。 第二磁性层是具有垂直磁化强度的膜。 第三磁性层是具有垂直磁化的膜,在室温下的矫顽力小于第二磁性层的矫顽力,并且居里温度高于第二磁性层的居里温度。 光强度调制重写方法适用于如此布置的磁光记录介质,可以获得相对于该磁光记录介质的优良再现信号特性,并且可以相对于记录介质进行再现,即使它 具有每个直径小于光束直径的记录位。 因此,可以提供适合于高密度记录的磁光记录介质。
    • 66. 发明授权
    • Magneto-optical recording medium and method for reproducing from same
    • 磁光记录介质及其再现方法
    • US5757734A
    • 1998-05-26
    • US668429
    • 1996-06-17
    • Junsaku NakajimaJunji HirokaneYoshiteru MurakamiAkira Takahashi
    • Junsaku NakajimaJunji HirokaneYoshiteru MurakamiAkira Takahashi
    • G11B11/10G11B11/105G11B11/00G11B5/66
    • G11B11/10586G11B11/10515
    • A magneto-optical recording medium is composed of a reproducing layer, a recording layer, and an initializing layer, which are laminated in this order. The reproducing layer is provided so that a light beam is projected thereon so as to reproduce information. The recording layer is provided so that information is recorded therein and the information is copied to the reproducing layer at a readout temperature. The initializing layer is provided so that the reproducing layer is initialized at room temperature. Non-magnetic layers are provided between the reproducing layer and the recording layer and between the recording layer and the initializing layer, respectively, so that such two layers are not exchange-coupled each other. The recording layer has a compensation temperature of room temperature, while the initializing layer has a compensation temperature of the readout temperature, which is achieved by temperature rise caused by the projection of the light beam. With such an arrangement, an external magnetic field for initializing the reproducing layer and an external magnetic field for reproduction-use can be omitted, thereby preventing a recording device from becoming large in size, as well as enhancing the recording density of the recording layer.
    • 磁光记录介质由再现层,记录层和初始化层组成,按顺序层叠。 提供再现层,使得光束在其上投影以再现信息。 提供记录层,使得信息被记录在其中,并且在读出温度下将信息复制到再现层。 提供初始化层,使得再现层在室温下被初始化。 在再现层和记录层之间以及记录层和初始化层之间分别设置非磁性层,使得这两层不相互交换。 记录层具有室温的补偿温度,而初始化层具有通过由光束的投影引起的温度上升而实现的读出温度的补偿温度。 通过这样的布置,可以省略用于初始化再现层的外部磁场和用于再现用途的外部磁场,从而防止记录装置尺寸变大,以及提高记录层的记录密度。
    • 69. 发明授权
    • Magneto optical memory device
    • 磁光存储器件
    • US5631096A
    • 1997-05-20
    • US400464
    • 1995-03-07
    • Junsaku NakajimaYoshiteru MurakamiKenji OhtaAkira Takahashi
    • Junsaku NakajimaYoshiteru MurakamiKenji OhtaAkira Takahashi
    • G11B11/10G11B11/105G11B5/66
    • G11B11/10508G11B11/10515G11B11/10586G11B11/10521Y10S428/90
    • A magneto-optical memory device is provided with a base whereon a first magnetic film which exhibits in-plane magnetization at room temperature and exhibits perpendicular magnetization at above room temperature, a second magnetic film having its Curie temperature above room temperature; and a third magnetic film having its Curie temperature set above the Curie temperature of the second magnetic film, which exhibits perpendicular magnetization in a temperature range between room temperature and Curie temperature are laminated in this order. When recording, the temperature of the third magnetic film is raised to the vicinity of its Curie temperature, and information is recorded thereon by an external magnetic field. As the magnetization of the second magnetic film having a temperature rise above its Curie temperature disappears, an exchange coupling force is not exerted between the first magnetic film and the third magnetic film. In the above arrangement, since the effect from the magnetization of the first magnetic film can be avoided, information can be recorded on the third magnetic film by a small external magnetic field, thereby permitting a reduction in electric power consumption and in the size of the apparatus.
    • 磁光存储器件设置有第一磁性膜的基底,第一磁性膜在室温下表现出平面内的磁化强度,并且在室温以上表现出垂直的磁化强度,第二磁性膜的居里温度高于室温; 并且将其居里温度设定在高于室温和居里温度之间的温度范围内的垂直磁化强度的第二磁性膜的居里温度的第三磁性膜依次层叠。 当记录时,第三磁性膜的温度升高到其居里温度附近,并且通过外部磁场在其上记录信息。 随着具有高于其居里温度的温度升高的第二磁性膜的磁化消失,在第一磁性膜和第三磁性膜之间不产生交换耦合力。 在上述结构中,由于可以避免第一磁性膜的磁化的影响,所以可以通过小的外部磁场将信息记录在第三磁性膜上,从而能够降低电力消耗和 仪器。
    • 70. 发明授权
    • Magneto-optical disk and the reproducing method thereof
    • 磁光盘及其再现方法
    • US5615182A
    • 1997-03-25
    • US511283
    • 1995-08-04
    • Yoshiteru MurakamiJunsaku NakajimaAkira TakahashiJunichiro NakayamaKenji Ohta
    • Yoshiteru MurakamiJunsaku NakajimaAkira TakahashiJunichiro NakayamaKenji Ohta
    • G11B11/10G11B11/105G11B11/00
    • G11B11/10515G11B11/10595
    • A magneto-optical disk, which possesses a disc-shaped substrate and a recording layer composed of a perpendicular magnetization film that is formed on the substrate, characterized in having: an area wherein magnetic domains having an upward magnetization and magnetic domains having a downward magnetization are alternately aligned along at least one circuit of the disk, the area being formed on the recording layer, the length of the magnetic domains having the upward magnetization being virtually equal to the length of the magnetic domains having the downward magnetization. This invention also has a reproducing method which is characterized in that, when information is reproduced by projecting a light beam onto the magneto-optical recording disk, the intensity of the light beam is adjusted so as to maximize the amplitude of a reproduced signal that is obtained from the area. With the above arrangement, a high-quality reproduced signal can be obtained independent of the characteristics of individual magneto-optical disks.
    • 一种磁光盘,其具有盘形基板和由形成在基板上的垂直磁化膜构成的记录层,其特征在于具有:具有向上磁化的磁畴和具有向下磁化的磁畴的区域 沿着盘的至少一个电路交替排列,所述区域形成在记录层上,具有向上磁化的磁畴的长度实质上等于具有向下磁化的磁畴的长度。 本发明还具有一种再现方法,其特征在于,当通过将光束投射到磁光记录盘上来再现信息时,调整光束的强度,以使得再现信号的幅度最大化 从该地区获得。 通过上述配置,可以独立于各个磁光盘的特性来获得高质量的再生信号。