Claims
- 1. A magnetooptical recording medium having at least a first layer and a second layer which is laminated on the first layer and which satisfies the following formulas at room temperature: ##EQU10## where, H.sub.c1 : the coercivity of first layer
- H.sub.c2 : the coercivity of second layer
- M.sub.s1 : the saturation magnetic moment of first layer
- M.sub.s2 : the saturation magnetic moment of second layer
- t.sub.1 : the film thickness of first layer
- t.sub.2 : the film thickness of second layer
- T.sub.r : room temperature
- T.sub.c1 : the Curie temperature of first layer
- T.sub.c2 : the Curie temperature of second layer
- .sigma..sub.w : the interface magnetic wall energy between the first layer and the second layer.
- 2. A multilayered magnetooptical recording medium comprising a first layer as a recording layer and a second layer as an auxiliary reference layer, wherein said first and second layers are magnetically coupled and the magnetization direction of said reference layer is capable of being oriented in a predetermined direction without changing the magnetization direction of said recording layer, and wherein the oriented state of the magnetization direction of said reference layer is maintained at room temperature in a condition in which an external magnetic field is zero.
- 3. An over-write capable multilayered magnetooptical recording medium comprising a first layer as a recording layer and a second layer as an auxiliary reference layer, wherein said first and second layers are magnetically coupled and the magnetization direction of said reference layer is capable of being oriented in a predetermined direction without changing the magnetization direction of said recording layer, and wherein the oriented state of the magnetization direction of said reference layer is maintained at room temperature in a condition in which an external magnetic field is zero.
- 4. A medium according to claim 2 or 3, wherein said first layer is a thin magnetic film having a high coercivity at room temperature and a low Curie temperature and said second layer is a thin magnetic film having a lower coercivity at room temperature and a higher Curie temperature than said first layer.
- 5. A medium according to claim 2 or 3, wherein when a temperature at which said first and second layers are magnetically coupled is given by T.sub.s1, and a temperature at which the direction of magnetization of said second layer is reversed by a bias field is given by T.sub.s2, said first layer has a higher coercivity at room temperature, said second layer has a lower coercivity at room temperature, and T.sub.S1 <T.sub.S2.
- 6. A medium according to claim 2 or 3, wherein both said first and second layers consist of a material selected from transition metal-heavy rare earth metal alloy compositions.
- 7. A medium according to claim 2 or 3, wherein both said first and second layers consist of a material selected from transition metal-heavy rare earth metal alloy compositions.
- 8. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has a compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has a compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <Tcomp.1<T.sub.c1 .apprxeq.T.sub.L .apprxeq.Tcomp.2<T.sub.c2 .apprxeq.T.sub.H ( 1)
- and satisfies the following formulas at room temperature:
- H.sub.c1 >H.sub.c2 +(.sigma..sub.w /2M.sub.s1 t.sub.1)+(.sigma..sub.w /2M.sub.s2 t.sub.2) (2)
- H.sub.c1 >(.sigma..sub.w /2M.sub.s1 t.sub.1) (3)
- H.sub.c2 >(.sigma..sub.w /2M.sub.s2 t.sub.2) (4)
- H.sub.c2 +(.sigma..sub.w /2M.sub.s2 t.sub.2)<.vertline.Hini..vertline.<H.sub.c1 -(.sigma..sub.w /2M.sub.s1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- Tcomp.1: compensation temperature of first layer
- Tcomp.2: compensation temperature of second layer
- T.sub.c1 : Curie temperature of first layer
- T.sub.c2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.c1 : coercivity of first layer
- H.sub.c2 : coercivity of second layer
- M.sub.s1 : saturation magnetization of first layer
- M.sub.s2 : saturation magnetization 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
- Hini.: initial field.
- 9. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has no compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has a compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <T.sub.c1 .apprxeq.T.sub.L .apprxeq.Tcomp.2<T.sub.c2 .apprxeq.T.sub.H ( 1)
- and satisfies the following formulas at room temperature:
- H.sub.c1 >H.sub.c2 +(.sigma..sub.w /2M.sub.s1 t.sub.1)+(.sigma..sub.w /2M.sub.s2 t.sub.2) (2)
- H.sub.c1 >(.sigma..sub.w /2M.sub.s1 t.sub.1) (3)
- H.sub.c2 >(.sigma..sub.w /2M.sub.s2 t.sub.2) (4)
- H.sub.c2 +(.sigma..sub.w /2M.sub.s2 t.sub.2)<.vertline.Hini..vertline.<H.sub.c1 -(.sigma..sub.w /2M.sub.s1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- Tcomp.2: compensation temperature of second layer
- T.sub.c1 : Curie temperature of first layer
- T.sub.c2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.c1 : coercivity of first layer
- H.sub.c2 : coercivity of second layer
- M.sub.s1 : saturation magnetization of first layer
- M.sub.s2 : saturation magnetization 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
- Hini.: initial field.
- 10. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has a compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has no compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <Tcomp.1<T.sub.c1 .apprxeq.T.sub.L <T.sub.c2 .apprxeq.T.sub.H( 1)
- and satisfies the following formulas at room temperature:
- H.sub.c1 H.sub.c2 +(.sigma..sub.w /2M.sub.s1 t.sub.1)+(.sigma..sub.w /2M.sub.s2 t.sub.2) (2)
- H.sub.c1 >(.sigma..sub.w /2M.sub.s1 t.sub.1) (3)
- H.sub.c2 >(.sigma..sub.w /2M.sub.s2 t.sub.2) (4)
- H.sub.c +(.sigma..sub.w /2M.sub.s2 t.sub.2)<.vertline.Hini..vertline.<H.sub.c1 -(.sigma..sub.w /2M.sub.s1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- Tcomp.1: compensation temperature of first layer
- T.sub.c1 : Curie temperature of first layer
- T.sub.c2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.c1 : coercivity of first layer
- H.sub.c2 : coercivity of second layer
- M.sub.s1 : saturation magnetization of first layer
- M.sub.s2 : saturation magnetization 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
- Hini.: initial field.
- 11. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has no compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has no compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <T.sub.c1 .apprxeq.T.sub.L <T.sub.c2 <T.sub.H ( 1)
- and satisfies the following formulas at room temperature:
- H.sub.C1 >H.sub.C2 +(.sigma..sub.w /2M.sub.S1 t.sub.1)+(.sigma..sub.w /2M.sub.S2 t.sub.2) (2)
- H.sub.C1 >(.sigma..sub.w /2M.sub.S1 t.sub.1) (3)
- H.sub.C2 >(.sigma..sub.w /2M.sub.S2 t.sub.2) (4)
- H.sub.C2 +(.sigma..sub.w /2M.sub.S2 t.sub.2)<.vertline.Hini..vertline.<H.sub.C1 -(.sigma..sub.w /2M.sub.S1 t.sub.1) (5)
- where
- T.sub.r : room temperature
- T.sub.C : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- M.sub.S1 : saturation magnetization of first layer
- M.sub.S2 : saturation magnetization 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
- Hini.: initial field.
- 12. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has a compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is transition metal rich and has no compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <Tcomp.1<T.sub.C1 .apprxeq.T.sub.L <T.sub.C2 .apprxeq.T.sub.H( 1)
- and satisfies the following formulas at room temperature:
- H.sub.C1 >H.sub.C2 +.vertline.(.sigma..sub.w /2M.sub.S1 t.sub.1)-(.sigma..sub.w /2M.sub.S2 t.sub.2).vertline. (2)
- H.sub.C1 >(.sigma..sub.w /2M.sub.S1 t.sub.1) (3)
- H.sub.C2 >(.sigma..sub.w /2M.sub.S2 t.sub.2) (4)
- H.sub.C2 +(.sigma..sub.w /2M.sub.S2 t.sub.2)<.vertline.Hini..vertline.<H.sub.C1 +(.sigma..sub.w /2M.sub.S1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- Tcomp.1: compensation temperature of first layer
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- M.sub.S1 : saturation magnetization of first layer
- M.sub.S2 : saturation magnetization 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
- Hini.: initial field.
- 13. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has no compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is transition metal rich and has no compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <T.sub.C1 .apprxeq.T.sub.L <T.sub.C2 .apprxeq.T.sub.H( 1)
- and satisfies the following formulas at room temperature:
- H.sub.C1 >H.sub.C2 +.vertline.(.sigma..sub.w /2M.sub.S1 t.sub.1)-(.sigma..sub.w /2M.sub.S2 t.sub.2).vertline. (2)
- H.sub.C1 >(.sigma..sub.w /2M.sub.S1 t.sub.1) (3)
- H.sub.C2 >(.sigma..sub.w /2M.sub.S2 t.sub.2) (4)
- H.sub.C2 +(.sigma..sub.w /2M.sub.S2 t.sub.2)<.vertline.Hini..vertline.<H.sub.C1 +(.sigma..sub.w /2M.sub.S1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- M.sub.S1 : saturation magnetization of first layer
- M.sub.S2 : saturation magnetization 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
- Hini.: initial field.
- 14. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is transition metal rich and has no compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is transition metal rich and has no compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <T.sub.C1 .apprxeq.T.sub.L <T.sub.C2 .apprxeq.T.sub.H( 1)
- and satisfies the following formulas at room temperature:
- H.sub.C1 >H.sub.C2 +(.sigma..sub.w /2M.sub.S1 t.sub.1)+(.sigma..sub.w /2M.sub.S2 t.sub.2) (2)
- H.sub.C1 >(.sigma..sub.w /2M.sub.S1 t.sub.1) (3)
- H.sub.C2 >(.sigma..sub.w /2M.sub.S1 t.sub.2) (4)
- H.sub.C2 +(.sigma..sub.w /2M.sub.S2 t.sub.2)<.vertline.Hini..vertline.<H.sub.C1 -(.sigma..sub.w /2M.sub.S1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- M.sub.S1 : saturation magnetization of first layer
- M.sub.S2 : saturation magnetization 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
- Hini.: initial field.
- 15. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is transition metal rich and has no compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has a compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <T.sub.C1 .apprxeq.T.sub.L =Tcomp.2<T.sub.C2 .apprxeq.T.sub.H( 1)
- and satisfies the following formulas at room temperature:
- H.sub.C1 H.sub.C2 +.vertline.(.sigma..sub.w /2M.sub.S1 t.sub.1)-(.sigma..sub.w /2M.sub.S2 t.sub.2).vertline. (2)
- H.sub.C1 >(.sigma..sub.w /2M.sub.S1 t.sub.1) (3)
- H.sub.C2 >(.sigma..sub.w /2M.sub.S2 t.sub.2) (4)
- H.sub.C2 +(.sigma..sub.w /2M.sub.S2 t.sub.2)<.vertline.Hini..vertline.<H.sub.C1 +(.sigma..sub.w /2M.sub.S1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- Tcomp.2: compensation temperature of second layer
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.C1 : coersivity of first layer
- H.sub.C2 : coersivity of second layer
- M.sub.S1 : saturation magnetization of first layer
- M.sub.S2 : saturation magnetization 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
- Hini.: initial field.
- 16. A medium according to claim 2 or 3, wherein said first layer consists of a transition metal-heavy rare earth metal alloy, which is transition metal rich and has no compensation temperature between room temperature and a Curie temperature, and said second layer consists of a transition metal-heavy rare earth metal alloy, which is heavy rare earth metal rich and has no compensation temperature between room temperature and a Curie temperature, and which satisfies the following formula:
- T.sub.R <T.sub.C1 .apprxeq.T.sub.L <T.sub.C2 .apprxeq.T.sub.H( 1)
- and satisfies the following formulas at room temperature:
- H.sub.C1 >H.sub.C2 +.vertline.(.sigma..sub.w /2M.sub.S1 t.sub.1)-(.sigma..sub.w /2M.sub.S2 t.sub.2).vertline. (2)
- H.sub.C1 >(.sigma..sub.w /2M.sub.S1 t.sub.1) (3)
- H.sub.C2 >(.sigma..sub.w /2M.sub.S2 t.sub.2) (4)
- H.sub.C2 +(.sigma..sub.w /2M.sub.S2 t.sub.2)<.vertline.Hini..vertline.<H.sub.C1 +(.sigma..sub.w /2M.sub.S1 t.sub.1) (5)
- where
- T.sub.R : room temperature
- T.sub.C1 : Curie temperature of first layer
- T.sub.C2 : Curie temperature of second layer
- T.sub.L : temperature of recording medium when irradiated with low-level laser beam
- T.sub.H : temperature of recording medium when irradiated with high-level laser beam
- H.sub.C1 : coercivity of first layer
- H.sub.C2 : coercivity of second layer
- M.sub.S1 : saturation magnetization of first layer
- M.sub.S2 : saturation magnetization 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
- Hini.: initial field.
- 17. A medium according to claim 2 or 3, wherein a direction of magnetization of said reference layer in at least a part of the medium orients to an A-direction.
- 18. A multilayered magnetooptical recording medium according to claim 17, wherein after a beam of high intensity level is radiated to said part of the medium, which is moving under a bias magnetic field, a bit having a non-A-direction magnetization is formed in said reference layer and a bit having a direction of magnetization controlled by said reference layer is formed in said recording layer, and after a beam of low intensity level is radiated to said part of the medium which is moving, a bit having an A-direction magnetization is formed in said reference layer and a bit having a direction of magnetization controlled by said reference layer is formed in said recording layer.
Priority Claims (4)
Number |
Date |
Country |
Kind |
60-126775 |
Jun 1985 |
JPX |
|
60-201423 |
Sep 1985 |
JPX |
|
60-217313 |
Sep 1985 |
JPX |
|
61-208608 |
Sep 1986 |
JPX |
|
CROSS-REFERENCE TO RELATED APPLICATION
This is a division of application Ser. No. 453,255 filed Dec. 20, 1989, now U.S. Pat. No. 5,239,524, which is a continuation of application Ser. No. 090,973 filed Aug. 31, 1987 (abandoned), which is a continuation-in-part of application Ser. No. 870,350 filed Jun. 4, 1986 (abandoned).
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
0051296 |
May 1982 |
EPX |
Non-Patent Literature Citations (1)
Entry |
Kobayashi et al. "Magnetization of Exchange-Coupled Ferrimagnetic Double-Layered Films"; Jap. J. Appl. Phys. vol. 20, No. 11; Nov., 1981 pp. 2089-2095. |
Divisions (1)
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Number |
Date |
Country |
Parent |
453255 |
Dec 1989 |
|
Continuations (1)
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Number |
Date |
Country |
Parent |
90973 |
Aug 1987 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
870350 |
Jun 1986 |
|