Claims
- 1. An overwritable method of magnetooptical recording comprising the following steps:
- step 1) providing a magnetooptical recording medium and a laser beam, said medium comprising a substrate and a magnetic layer structure stacked on said substrate and including first and second magnetic exchange coupled layers each having perpendicular magnetic anisotropy;
- wherein when one of opposite directions substantially perpendicular to said medium is defined as an "A direction" and the other is defined as a "non-A direction",
- magnetization of said second layer can be aligned along the "A direction" or "non-A direction" without changing the direction of magnetization of said first layer, and wherein said structure satisfies the following condition:
- T.sub.R <T.sub.C1 T.sub.C2
- where
- T.sub.R : room temperature
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer,
- satisfies the following conditions at room temperature:
- H.sub.C1 >H.sub.C2 +.vertline.H.sub.D1 .-+.H.sub.D2 .vertline.
- H.sub.C1 >H.sub.D1
- H.sub.C2 >H.sub.D2
- where
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- H.sub.D1 : coupling field applied to second layer,
- H.sub.D2 : coupling field applied to first layer
- and satisfies the following conditions:
- H.sub.C1 >.sigma..sub.w /2M.sub.S1 t.sub.1
- H.sub.C2 >.sigma..sub.w /2M.sub.S2 t.sub.2
- where
- M.sub.S1 : saturation magnetic moment of first layer
- M.sub.S2 : saturation magnetic moment of second layer
- t.sub.1 : film thickness of first layer
- t.sub.2 : film thickness of second layer
- .sigma..sub.w : interface wall energy (exchange coupling force);
- step 2) aligning magnetization of said second layer to the "A direction" at least at a region to be recorded;
- step 3) moving said medium relative to said laser beam in a direction transverse to said laser beam; and
- step 4) irradiating said region of said medium to be recorded with said laser beam while pulse-modulating said laser beam between a high-level and a low-level in accordance with binary information to be recorded and while applying a bias field to said region;
- wherein the following condition is satisfied:
- T.sub.R <T.sub.L <T.sub.C1 <T.sub.H <T.sub.C2
- where
- T.sub.L : temperature of recording medium when irradiated by said low- level laser beam
- T.sub.H : temperature of recording medium when irradiated by said high-level laser beam; and
- wherein the following condition is established when the temperature of said recording medium is raised from T.sub.R to T.sub.L :
- H.sub.C1 .+-.H.sub.b <.sigma..sub.w /2M.sub.S1 t.sub.1
- where
- H.sub.b : bias field,
- whereby
- when the medium has been irradiated by a high-level laser beam, a bit having a "non-A direction" magnetization is formed in said second layer and a bit having a magnetization in a direction stable to the magnetization of said second layer is formed in said first layer at T.sub.R, and
- when the medium has been irradiated by a low-level laser beam, a bit having an "A direction" magnetization is formed in said second layer and a bit having a magnetization in a direction stable to the magnetization of said second layer is formed in said first layer at T.sub.R.
- 2. An overwritable method according to claim 1, wherein said structure satisfies the following condition:
- H.sub.C2 +H.sub.D2 <.vertline.Hini..vertline.<H.sub.C1 .+-.H.sub.D1
- where
- Hini.: initial field.
- 3. An overwritable method according to claim 1, wherein said first layer has a compensation temperature Tcomp.1 which is substantially equal to room temperature and said second layer has a compensation temperature Tcomp.2 which is higher than room temperature and lower than the Curie temperature T.sub.C1 of the first layer.
- 4. An overwritable method according to claim 1, wherein said second layer has a compensation temperature Tcomp.2 which is higher than room temperature T.sub.R and lower than the Curie temperature T.sub.C1 of the first layer.
- 5. An overwritable method according to claim 1, wherein said first layer has a compensation temperature Tcomp.1 which is higher than room temperature and said second layer has a compensation temperature Tcomp.2 which is higher than room temperature and lower than the Curie temperature T.sub.m of the first layer.
- 6. An overwritable method according to claim 1, wherein said second layer has a compensation temperature Tcomp.2 which is higher than room temperature T.sub.R and lower than the Curie temperature T.sub.C1 of the first layer, the second layer satisfying a relation T.sub.L > Tcomp.2.
- 7. An overwritable method of magnetooptical recording comprising the following steps:
- step 1) providing a magnetooptical recording medium and a laser beam, said medium comprising a substrate and a magnetic layer structure stacked on said substrate and including first and second magnetic exchange coupled layers each having perpendicular magnetic anisotropy;
- wherein when one of opposite directions substantially perpendicular to said medium is defined as an "A direction" and the other is defined as a "non-A direction",
- magnetization of said second layer can be aligned along the "A direction" or "non-A direction" without changing the direction of magnetization of said first layer, and wherein said structure satisfies the following condition:
- T.sub.R <T.sub.C1 <T.sub.C2
- where
- T.sub.R : room temperature
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer,
- satisfies the following conditions at room temperature:
- H.sub.C1 >H.sub.C2 +.vertline.H.sub.D1 .-+.H.sub.D2 .vertline.
- H.sub.C1 >H.sub.D1
- H.sub.C2 >H.sub.D2
- where
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- H.sub.D1 : coupling field applied to first layer
- H.sub.D2 : coupling field applied to second layer,
- and satisfies the following conditions:
- H.sub.C1 >.sigma.w/2M.sub.S1 t.sub.1
- H.sub.C2 >.sigma.w/2M.sub.S2 t.sub.2
- where
- M.sub.S1 : saturation magnetic moment of first layer
- M.sub.S2 : saturation magnetic moment of second layer
- t.sub.1 : film thickness of first layer
- t.sub.2 : film thickness of second layer
- .pi.w: interface wall energy (exchange coupling force);
- step 2) aligning magnetization of said second layer to the "A direction" at least at a region to be recorded;
- step 3) moving said medium relative to said laser beam in a direction transverse to said laser beam; and
- step 4) irradiating said region of said medium to be recorded with said laser beam while pulse-modulating said laser beam between a high-level and a low-level in accordance with binary information to be recorded and while applying a bias field to said region;
- wherein the following condition is satisfied:
- T.sub.R <T.sub.L <T.sub.H <T.sub.Cl <T.sub.C2
- where
- T.sub.L : temperature of recording medium when irradiated by said low-level laser beam
- T.sub.H : temperature of recording medium when irradiated by said high-level laser beam; and
- wherein the following condition is established when the temperature of said recording medium is raised from T.sub.R to T.sub.L :
- H.sub.C1 .+-.H.sub.b <.sigma.w/2M.sub.S1 t.sub.1
- where
- H.sub.b :bias field,
- whereby
- when themedium has been irradiated by a high-level laser beam, a bit having a "non-A direction" magnetization is formed in said second layer and a bit having a magnetizationin a direction stable to the magnetization of said second layer is formed in said first layer at T.sub.R, and
- when the medium has been irradiated by a low-level laser beam, a bit having an "A direction" magnetization is formed in said second layer and a bit having a magnetization in a direction stable to the magnetization of said second layer is formed in said first layer at T.sub.R.
- 8. An overwritable method according to claim 7, wherein said structure satisfies the following condition:
- H.sub.C2 +H.sub.D2 <.vertline.Hini..vertline.<H.sub.C1 .+-.H.sub.D1
- where
- Hini.: initial field.
Priority Claims (3)
Number |
Date |
Country |
Kind |
63-105833 |
Apr 1988 |
JPX |
|
63-122634 |
May 1988 |
JPX |
|
63-140275 |
Jun 1988 |
JPX |
|
Parent Case Info
This is a division of application Ser. No. 580,361 filed Sep. 10, 1990, which is a continuation of application Ser. No. 343,361 filed Apr. 26, 1989, both of which are now abandoned.
US Referenced Citations (5)
Foreign Referenced Citations (3)
Number |
Date |
Country |
8775306 |
Jan 1988 |
AUX |
225141 |
Jun 1987 |
EPX |
257530 |
Mar 1988 |
EPX |
Non-Patent Literature Citations (3)
Entry |
Saito et al, "Direct Overwrite By Light Power Modulation on Magnetooptical Multi-Layered Media", Jap. J. App. Phys., vol. 26, Sep. 16, 1987, Supplement 26-4 pp. 155-159. |
Kobayashi et al. "Magnetization Process of Exchange-Coupled Ferrimagnetic Double-Layered Films" Jap. J. App. Phys. vol. 20 No. 11 Nov., 1981 pp. 2089-2095. |
The Bell System Technical Journal, Sep. 1983, vol. 62, No. 7, Part 1, pp. 1923-1936. |
Divisions (1)
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Number |
Date |
Country |
Parent |
580361 |
Sep 1990 |
|
Continuations (1)
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Number |
Date |
Country |
Parent |
343361 |
Apr 1989 |
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