Claims
- 1. A thermomagnetic recording method comprising the steps of: selecting a thermomagnetic recording medium including a laminated film consisting of a first magnetic thin film and a second magnetic thin film having perpendicular magnetic anisotropy and a third magnetic thin film interposed therebetween, said films being laminated and magnetically coupled with each other, said third magnetic thin film reducing the magnetic wall energy between said first and second magnetic thin films, said third magnetic film being made of a rare earth rich metallic film, said third magnetic thin film having an anisotropy in the range extending from longitudinal anisotropy, parallel to the film surface, to a small perpendicular anisotropy, which is a smaller perpendicular magnetic anisotropy that than of said first and second magnetic thin films at room temperature and has a temperature characteristic of the effective anisotropy constant K being convex upward or linear, and having its saturation magnetization M.sub.s being from 0 to 450 emu/cm.sup.3 at room temperature, of:
- modulating laser light in accordance with an information signal to be recorded to produce a first heating condition to heat said medium to a temperature T.sub.1 which is virtually above the Curie temperature T.sub.C1 of said first magnetic thin film and not causing reversal of the magnetic moment in said second magnetic thin film, and a second heating condition to heat the same to a temperature T.sub.2 which is above said temperature T.sub.C1 and sufficient to cause reversal of the magnetic moment in said second magnetic thin film; and
- cooling the medium from the heated states so that record magnetization is formed in said thermomagnetic recording medium.
- 2. A thermomagnetic recording method comprising the steps of: selecting a thermomagnetic recording medium including a laminated film consisting of a first magnetic thin film formed of a first component film and a second component film, each thereof having perpendicular magnetic anisotropy and a different Curie temperature from each other, a second magnetic thin film having perpendicular magnetic anisotropy, and a third magnetic thin film interposed between said second component film of said first magnetic thin film and said second magnetic thin film, said third magnetic thin film having an anisotropy in the range extending from longitudinal anisotropy, parallel to the film surface, to a small perpendicular anisotropy, said films being laminated and magnetically coupled with each other, said third magnetic thin film reducing the magnetic wall energy between said first and second magnetic thin films,
- the Curie temperature T.sub.C12 of said second component film of said first magnetic thin film being higher than the Curie temperature T.sub.C11 of said first component film thereof,
- modulating laser light in accordance with an information signal to be recorded to produce a first heating condition for heating the medium to a temperature T.sub.1 which is in the vicinity of said Curie temperature T.sub.C11, not causing reversal of the magnetic moment in said second magnetic thin film, and sufficient to change the magnetic moment in said second component film of said first magnetic thin film in compliance with the magnetic moment in said second magnetic thin film and a second heating condition for heating the same to a temperature T.sub.2 which is above said Curie temperature T.sub.C12 and sufficient to cause reversal of the magnetic moment in said second magnetic thin film; and
- cooling the medium from the heating states so that record magnetization is formed, in compliance with the magnetization in said second component film of said first magnetic thin film, also in said first component film thereof.
- 3. A thermomagnetic recording method comprising the step of: selecting a thermomagnetic recording medium including a laminated film having a first magnetic thin film formed of a first component film and a second component film, each thereof having perpendicular magnetic anisotropy and a different Curie temperature from each other, a second magnetic thin film having perpendicular magnetic anisotropy, and a third magnetic thin film interposed between said second component film of said first magnetic thin film and said second magnetic thin film, said third magnetic thin film having an anisotropy in the range extending from longitudinal anisotropy, parallel to the film surface, to a small perpendicular anisotropy, said films being magnetically coupled with each other, said third magnetic thin film reducing the magnetic wall energy between said first and second magnetic thin films, and further having a magneto-optical reproducing thin film disposed in the front of said first component film of said first magnetic thin film magnetically coupled thereto,
- the Curie temperature T.sub.C12 of said second component film of said first magnetic thin film being higher than the Curie temperature T.sub.C11 of said first component film thereof,
- said magneto-optical reproducing film satisfying 2M.sub.SR h.sub.R H.sub.CR +2M.sub.S11 h.sub.11 H.sub.C11 <.sigma..sub.wa +2M.sub.S12 h.sub.12 H.sub.C12 (where M.sub.SR, M.sub.S11 and M.sub.S12 ; h.sub.r, h.sub.11, and h.sub.12 ; H.sub.CR, H.sub.C11, and H.sub.C12 are saturation magnetization, film thickness, and coercive force of said magneto-optical reproducing thin film, first and second component films, respectively, and .sigma..sub.wa is domain wall energy between said second component film and said second magnetic thin film) and having a larger Kerr rotation angle than said first component film,
- modulating laser light in accordance with an information signal to be recorded to produce a first heating condition for heating the medium to a temperature T.sub.1 which is in the vicinity of said Curie temperature T.sub.C11, not causing reversal of the magnetic moment in said second magnetic thin film, and sufficient to change the magnetic moment in said second component film of said first magnetic thin film in compliance with the magnetic moment in said second magnetic thin film, and a second heating condition for heating the same to a temperature T.sub.2 which is above said Curie temperature T.sub.C12 and sufficient to cause reversal of the magnetic moment in said second magnetic thin film; and
- cooling the medium from the heated states so that record magnetization is formed, in compliance with the magnetization in said second component film of said first magnetic thin film, also in said first component film thereof and said magneto-optical reproducing thin film.
- 4. A thermomagnetic recording method comprising the steps of: selecting a thermomagnetic recording medium formed in a laminated structure of, at least, first and second magnetic thin films each having perpendicular magnetic anisotropy, wherein
- said second magnetic thin film is formed of first and second component films laminated to each other by exchange coupling, said first and second component films having characteristics H.sub.C21R >H.sub.C22R and T.sub.C21 <T.sub.C22, H.sub.C21R and H.sub.C22R representing coercive forces of said first and second component films at room temperature and T.sub.C21 and T.sub.C22 representing the Curie temperatures of the same,
- modulating laser light a first heating condition to heat the medium to produce a first temperature T.sub.1 being virtually in the vicinity of the Curie temperature T.sub.C1 of said first magnetic thin film and not causing reversal of the magnetic moment in said second magnetic thin film and a second heating condition to heat the medium to a second temperature T.sub.2 being over said Curie temperature T.sub.C1 and sufficient to cause reversal of the magnetic moment in said second magnetic thin film in accordance with an information signal to be recorded, and
- adapting in the course of the medium cooling down from the first and second heated states such that the magnetic moments within said second magnetic thin film are brought into the same state.
Priority Claims (4)
Number |
Date |
Country |
Kind |
63-174695 |
Jul 1988 |
JPX |
|
3-272400 |
Oct 1988 |
JPX |
|
1-6453 |
Jan 1989 |
JPX |
|
1-6454 |
Jan 1989 |
JPX |
|
Parent Case Info
This is a continuation of application Ser. No. 377,944, filed Jul. 10, 1989, now abandoned.
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4645722 |
Katayama et al. |
Feb 1987 |
|
4794560 |
Bell et al. |
Dec 1988 |
|
4842956 |
Kobayashi |
Jun 1989 |
|
4910622 |
Saito et al. |
Mar 1990 |
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Mar 1988 |
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EPX |
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JPX |
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Non-Patent Literature Citations (1)
Entry |
SPIE vol. 1078 Optical Data Storage Topical Meeting (1989) "Overwriting On A Magneto-Optical Disk With Magnet Triple Layers By Means Of The Light Intensity Modulation Method", pp. 258-264. |
Continuations (1)
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Number |
Date |
Country |
Parent |
377944 |
Jul 1989 |
|