Claims
- 1. A magnetooptical recording medium comprising:
- a transparent substrate;
- a first magnetic layer;
- a second magnetic layer exchange-coupled to said first magnetic layer, said second magnetic layer having a higher Curie point and a lower coercive force at room temperature than those of said first magnetic layer; and
- a third magnetic layer located between said first magnetic layer and said second magnetic layer;
- wherein a following relationship is satisfied:
- H.sub.1 >H.sub.2 >H.sub.3
- wherein H.sub.1, H.sub.2 and H.sub.3 are respectively coercive forces at room temperature of said first, second and third magnetic layers; and
- wherein said first magnetic layer is located closer than said second and third magnetic layers to said transparent substrate and said third magnetic layer is located closer than said second magnetic layer to said transparent substrate.
- 2. A magnetooptical recording medium according to claim 1, wherein said first, second and third magnetic layers are respectively composed of rare earth element-transition metal amorphous alloy.
- 3. A magnetooptical recording medium according to claim 2, wherein said first magnetic layer has a composition rich in the transition metal compared with a compensation composition while said second and third magnetic layers have compositions both rich in the rare earth element compared with the compensation composition, or vice versa.
- 4. A magnetooptical recording medium according to claim 2, wherein said first and second magnetic layers are composed of alloys selected from the group consisting of GdCo, GdFe, TbFe, DyFe, GdTbFe, TbDyFe, GdFeCo, TbFeCo, GdTbCo and GdTbFeCo.
- 5. A magnetooptical recording medium according to claim 1, wherein the Curie point of said first magnetic layer is in a range from 70.degree. to 200.degree. C., the Curie point of said second magnetic layer is in a range from 150.degree. to 400.degree. C., and the Curie point of said third magnetic layer is in a range of 90.degree. to 400.degree. C.
- 6. A magnetooptical recording medium according to claim 1, wherein the coercive force of said first magnetic layer is in a range from 2 to 10 KOe, the coercive force of said second magnetic layer is in a range from 0.5 to 4 KOe, and the coercive force of said third magnetic layer is in a range from 0.1 to 1 KOe.
- 7. A magnetooptical recording medium according to claim 1, wherein the following conditions are satisfied: ##EQU10## wherein .sigma..sub.w13 is the magnetic wall energy between the first and third magnetic layers; .sigma..sub.w23 is the magnetic wall energy between the second and third magnetic layers; h.sub.1, h.sub.2 and h.sub.3 are respectively thicknesses of the first, second and third magnetic layers; and M.sub.s1, M.sub.s2 and M.sub.s3 are respectively saturation magnetizations of said first, second and third layers.
- 8. A process for recording information on a magnetooptical recording medium which comprises a transparent substrate, a first magnetic layer, a second magnetic layer exchange-coupled to the first magnetic layer and having a higher Curie point and a lower coercive force at room temperature than those of the first magnetic layer and a third magnetic layer located between the first and second magnetic layers, and which satisfies a relation H.sub.1 >H.sub.2 >H.sub.3 where H.sub.1, H.sub.2 and H.sub.3 are respectively coercive forces at room temperature of those magnetic layers, and wherein the first magnetic layer is located closer than the second and third magnetic layers to the transparent substrate and the third magnetic layer is located closer than the second magnetic layer to the transparent substrate, said process comprising steps for:
- (a) orienting the magnetization of the second magnetic layer in a predetermined direction with respect to the transparent substrate., while retaining the direction of magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the first magnetic layer, thereby orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer while retaining the direction of magnetization of the second magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the second magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the second magnetic layer and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the magnetization of the second magnetic layer, according to an information signal.
- 9. A magnetooptical recording medium comprising:
- a transparent substrate;
- a first magnetic layer comprised of a rare earth element-transition metal amorphous alloy having a composition rich in the transition metal compared with a compensation composition;
- a second magnetic layer exchange-coupled to said first magnetic layer and having a higher Curie point and a lower coercive force at room temperature than those of said first magnetic layer, said second magnetic layer being comprised of a rare earth element-transition metal amorphous alloy having a composition rich in the rare earth element compared with the compensation composition; and
- a third magnetic layer located between said first and second magnetic layers, said third magnetic layer being comprised of a rare earth element-transition metal amorphous alloy having a composition rich in the rare earth element compared with the compensation composition,
- wherein said first magnetic layer is located closer than said second and third magnetic layers to said transparent substrate and said third magnetic layer is located closer than said second magnetic layer to said transparent substrate.
- 10. A magnetooptical recording medium according to claim 9, wherein said first and second magnetic layers are composed of alloys selected from the group consisting of GdCo, GdFe, TbFe, DyFe, GdTbFe, TbDyFe, GdFeCo, TbFeCo, TbFeCo, GdTbCo and GdTbFeCo.
- 11. A magnetooptical recording medium according to claim 9, wherein the Curie point of said first layer is in a range from 70.degree. to 200.degree. C., the Curie point of said second magnetic layer is in a range from 150.degree. to 400.degree. C., and the Curie point of said third magnetic layer is in a range from 90.degree. to 400.degree. C.
- 12. A magnetooptical recording according to claim 9, wherein the coercive force of said first magnetic layer is in a range from 2 to 10 KOe, the coercive force of said second magnetic layer is in a range from 0.5 to 4 KOe, and the coercive force of said third magnetic layer is in a range from 0.1 to 1 KOe.
- 13. A magnetooptical recording medium according to claim 9, wherein the following conditions are satisfied: ##EQU11## wherein .sigma..sub.w13 is the magnetic wall energy between the first and third magnetic layers; .sigma..sub.w23 is the magnetic wall energy between the second and third magnetic layers; h.sub.1, h.sub.2 and h.sub.3 are respectively thicknesses of the first, second and third magnetic layers; and M.sub.s1, M.sub.s2, and M.sub.s3 are respectively saturation magnetizations of said first, second and third layers.
- 14. A process for recording information on a magnetooptical recording medium recited in claim 9, said process comprising the steps for:
- (a) orienting the magnetization of the second magnetic layer in a predetermined direction with respect to the transparent substrate, while retaining the direction of magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the first magnetic layer, thereby orienting the magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer while retaining the direction of magnetization of the second magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the second magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the second magnetic layer and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer, according to an information signal.
- 15. A magnetooptical recording medium comprising:
- a transparent substrate;
- a first magnetic layer comprised of a rare earth element-transition metal amorphous alloy having a composition rich in the rare earth element compared with a compensation composition;
- a second magnetic layer exchange-coupled to said first magnetic layer and having a higher Curie point and a lower coercive force at room temperature than those of said first magnetic layer, said second magnetic layer being comprised of a rare earth element-transition metal amorphous alloy having a composition rich in the transition metal compared with the compensation composition; and
- a third magnetic layer located between said first and second magnetic layers, said third magnetic layer being comprised of a rare earth element-transition metal amorphous alloy having a composition rich in the transition metal compared with the compensation composition,
- wherein said first magnetic layer is closer than said second and third magnetic layers to said transparent substrate and said third magnetic layer is closer than said second magnetic layer to said transparent substrate.
- 16. A magnetooptical recording medium according to claim 15, wherein said first and second magnetic layers are composed of alloys selected from the group consisting of GdCo, GdFe, TbFe, DyFe, GdTbFe, TbDyFe, GdFeCo, TbFeCo, GdTbCo and GdTbFeCo.
- 17. A magnetooptical recording medium according to claim 15, wherein the Curie point of said first layer is in a range from 70.degree. to 200.degree. C., the Curie point of said second magnetic layer is in a range from 150.degree. to 400.degree. C., and the Curie point of said third magnetic layer is in a range from 90.degree. to 400.degree. C.
- 18. A magnetooptical recording medium according to claim 15, wherein the coercive force of said first magnetic layer is in a range from 2 to 10 KOe, the coercive force of said second magnetic layer is in a range from 0.5 to 4 KOe, and the coercive force of said third magnetic layer is in a range from 0.1 to 1 KOe.
- 19. A magnetooptical recording medium according to claim 15, wherein the following conditions are satisfied: ##EQU12## wherein .sigma..sub.w13 is the magnetic wall energy between the first and third magnetic layers; .sigma..sub.w23 is the magnetic wall energy between the second and third magnetic layers; h.sub.1, h.sub.2 and h.sub.3 are respectively thicknesses of the first, second and third magnetic layers; and M.sub.s1, M.sub.s2, and M.sub.s3 are respectively saturation magnetizations of said first, second and third layers.
- 20. A process for recording information on a magnetooptical recording medium recited in claim 15, said process comprising steps for:
- (a) orienting the direction of magnetization of the second magnetic layer in a predetermined direction with respect to the transparent substrate, while retaining the direction of magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the first magnetic layer, thereby orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer while retaining the direction of magnetization of the second magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the second magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the second magnetic layer and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer, according to an information signal.
- 21. A magnetooptical recording medium comprising:
- a first magnetic layer; and
- a second magnetic layer positioned opposite to said first magnetic layer in a plane parallel to that of said first magnetic layer and exchange-coupled to said first magnetic layer, said second magnetic layer having a higher Curie point and a lower coercive force at room temperature than those of said first magnetic layer;
- wherein the following relationships are satisfied: ##EQU13## wherein H.sub.1 and H.sub.2 are respectively coercive forces at room temperature of said first and second layers, M.sub.s is the saturation magnetization of said second magnetic layer, .sigma..sub.w is the magnetic wall energy between said first and second magnetic layers, and L.sub.1 and L.sub.2 are respectively thicknesses of said first and second magnetic layers.
- 22. A magnetooptical recording medium according to claim 21, wherein said first and second magnetic layers are respectively composed of rare earth element-transition metal amorphous alloy.
- 23. A magnetooptical recording medium according to claim 22, wherein said first and second magnetic layers are respectively composed of alloys selected from the group consisting of GdCo, GdFe, TbFe, DyFe, GdTbFe, TbDyFe, GdFeCo, TbFeCo, GdTbCo and GdTbFeCo.
- 24. A process for recording information on a magnetooptical recording medium recited in claim 21, said process comprising the steps for:
- (a) orienting the direction of magnetization of the second magnetic layer in a predetermined direction with respect to the transparent Substrate, while retaining the direction of magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the first magnetic layer, thereby orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer while retaining the direction of magnetization of the second magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the second magnetic layer while applying a bias magnetic field thereby inverting the direction of magnetization of the second magnetic layer and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer, according to an information signal.
- 25. An information recording process for recording on a magnetooptical recording medium provided, in succession on a transparent substrate, with a first magnetic layer having a high Curie point T.sub.H1 and a low coercive force H.sub.L1, a second magnetic layer having a lower Curie point T.sub.L2 and a higher coercive force H.sub.H2 compared with those of the first magnetic layer, and a third magnetic layer having a higher Curie point T.sub.H3 and a lower coercive force H.sub.L3 compared with those of the second magnetic layer, wherein the three magnetic layers are mutually coupled so as to satisfy the following conditions: ##EQU14## wherein .sigma..sub.w12 is the magnetic wall energy of the first and second magnetic layers; .sigma..sub.w23 is the magnetic wall energy of the second and third magnetic layers; h.sub.1, h.sub.2 and h.sub.3 are respective thicknesses of the first, second and third magnetic layers; and M.sub.s1, M.sub.s2 and M.sub.s3 are respective saturation magnetizations of the layers, and wherein the first magnetic layer is located closer than the second and third magnetic layers to the transparent substrate and the second magnetic layer is located closer than the third magnetic layer to the transparent substrate, said process comprising steps for:
- (a) orienting the magnetization of the third magnetic layer in a predetermined direction with respect to the transparent substrate, while retaining the direction of magnetization of the second magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point T.sub.L2 of the second magnetic layer, thereby orienting the directions of magnetization of the first and second magnetic layers in a direction that is stable with respect to the direction of magnetization of the third magnetic layer while retaining the direction of magnetization of the third magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point T.sub.H3 of the third magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the third magnetic layer and simultaneously orienting the directions of magnetization of the first and second magnetic layers in a direction that is stable with respect to the direction of magnetization of the third magnetic layer, according to an information signal.
- 26. An information recording process for recording on a magnetooptical recording medium provided, on a transparent substrate, with a first magnetic layer having a Curie point T.sub.1 and a coercive force H.sub.1, a second magnetic layer having a Curie point T.sub.2 and a coercive force H.sub.2 and a third magnetic layer having a Curie point T.sub.3 and a coercive force H.sub.3, and satisfying the following conditions:
- (A) each magnetic layer being composed principally of an amorphous alloy of a rare earth element and a transition metal;
- (B) H.sub.1 >H.sub.3 >H.sub.2 and T.sub.3 .gtoreq.T.sub.2 >T.sub.1 ; and
- (C) the first magnetic layer has a composition rich in the transition metal compared with the compensation composition while the second and third magnetic layers both have compositions rich in the rare earth element, or the first magnetic layer has a composition rich in the rare earth element while the second and third magnetic layers both have compositions rich in the transition metal,
- wherein the first magnetic layer is located closer than the second and third magnetic layers to the transparent substrate and the third magnetic layer is located closer than the second magnetic layer to the transparent substrate, said process comprising steps for:
- (a) orienting the magnetization of the second and third magnetic layers in a predetermined direction with respect to the transparent substrate, while retaining the magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point T.sub.1 of the first magnetic layer, thereby orienting the magnetization of the first magnetic layer in a direction that is stable with respect to the directions of magnetization of the second and third magnetic layers while retaining the directions of magnetization of the second and third magnetic layers, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point T.sub.3 of the third magnetic layer while applying a bias magnetic field, thereby inverting the directions of magnetization of the second and third magnetic layers and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the directions of magnetization of the second and third magnetic layers, according to an information signal.
- 27. An information recording process for recording on a magnetooptical recording medium provided, at least on a transparent substrate, with a quadruple-layered magnetic film consisting of a first magnetic layer having a Curie point T.sub.1, a coercive force H.sub.1, a thickness h.sub.1 and a saturation magnetization M.sub.s1, a second magnetic layer having a Curie point T.sub.2, a coercive force H.sub.2, a thickness h.sub.2 and a saturation magnetization M.sub.s2, a third magnetic layer having a Curie point T.sub.3, a coercive force H.sub.3, a thickness h.sub.3 and a saturation magnetization M.sub.s3, and a fourth magnetic layer having a Curie point T.sub.4, a coercive force H.sub.4, a thickness h.sub.4 and a saturation magnetization M.sub.s4, in which the magnetic layers are exchange-coupled so as to satisfy following conditions:
- (I) as for the Curie points of the magnetic layers: T.sub.1, T.sub.4 >T.sub.2, T.sub.3
- (II) as for the coercive forces of the magnetic layers: H.sub.2 >H.sub.4 >H.sub.1, H.sub.3
- (III) as for the thicknesses of the magnetic layers: h.sub.1 +h.sub.2 .gtoreq.250 .ANG. h.sub.1 +h.sub.2 +h.sub.3 +h.sub.4 .gtoreq.600 .ANG. and
- (IV) as for the saturation magnetizations, thicknesses, coercive forces and magnetic wall energies of the magnetic layers: ##EQU15## wherein .sigma..sub.w12, .sigma..sub.w23 and .sigma..sub.w34 are magnetic wall energies respectively for the first and second magnetic layers, second and third magnetic layers, and third and fourth magnetic layers, wherein the first magnetic layer is closer than the second, third and fourth magnetic layers to the transparent substrate, the second magnetic layer is closer than the third and fourth magnetic layers to the transparent substrate and the third magnetic layer is closer than the fourth magnetic layer to the transparent substrate, said process comprising steps for:
- (a) orienting the magnetization of the fourth magnetic layer in a predetermined direction with respect to the transparent substrate, while retaining the direction of magnetization of the second magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point T.sub.2 of the second magnetic layer, thereby orienting, across the third magnetic layer, the directions of magnetization of the first and second magnetic layers in a direction that is stable with respect to the direction of magnetization of the fourth magnetic layer while retaining the direction of magnetization of the fourth magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point T.sub.4 of the fourth magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the fourth magnetic layer and simultaneously orienting the directions of magnetization of the first, second and third magnetic layers in a direction that is stable with respect to the direction of magnetization of the fourth magnetic layer, according to an information signal.
- 28. A process for recording information on a magnetooptical recording medium which comprises a transparent substrate, a first magnetic layer formed on the substrate, a second magnetic layer formed on the first magnetic layer and having a higher Curie point and a lower coercive force at room temperature than those of the first magnetic layer and a third magnetic layer provided between the first and second magnetic layers and exhibiting surfacial magnetic anisotropy at room temperature and vertical magnetic anisotropy at temperatures close to the Curie point of the first magnetic layer, said process comprising steps for:
- (a) orienting the magnetization of the second magnetic layer in a predetermined direction with respect to the transparent substrate, while retaining the direction of magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the first magnetic layer, thereby orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer while retaining the direction of magnetization of the second magnetic layer, or a second type of recording by irradiating the medium with a light beam having power sufficient to heat the medium close to the Curie point of the second magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the second magnetic layer and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the magnetization of the second magnetic layer, according to an information signal.
- 29. A process for recording information on a magnetooptical recording medium which comprises a transparent substrate, a first magnetic layer formed on the substrate, a second magnetic layer formed on the first magnetic layer, having a lower Curie point and a higher coercive force at room temperature than those of the first magnetic layer and exchange-coupled with the first magnetic layer and a third magnetic layer provided on the second magnetic layer, having a higher Curie point and a lower coercive force at room temperature than those of the second magnetic layer and exchange-coupled with the second magnetic layer, the exchange-coupling force between the second and third magnetic layers being small compared with that between the first and second magnetic layers, said process comprising steps for:
- (a) orienting the magnetization of the third magnetic layer in a predetermined direction with respect to the transparent substrate, while retaining the direction of magnetization of the second magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the second magnetic layer, thereby orienting the direction of magnetization of the first and second magnetic layers in a direction that is stable with respect to the direction of magnetization of the third magnetic layer while retaining the direction of magnetization of the third magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the third magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the third magnetic layer and simultaneously orienting the directions of magnetization of the first and second magnetic layers in a direction that is stable with respect to the direction of magnetization of the third magnetic layer, according to an information signal.
- 30. A process for recording information on a magnetooptical recording medium which comprises a transparent substrate, a first magnetic layer, a second magnetic layer exchange-coupled to the first magnetic layer and having a higher Curie point and a lower coercive force at room temperature than those of the first magnetic layer and a third magnetic layer provided between the first and second magnetic layers and having a larger saturation magnetization than those of the first and second magnetic layers, wherein the first magnetic layer is located closer to the transparent substrate than the second and third magnetic layers and the third magnetic layer is located closer to the transparent substrate than the second magnetic layer, said process comprising steps for:
- (a) orienting the direction of magnetization of the second magnetic layer in a predetermined direction with respect to the transparent substrate while retaining the direction of magnetization of the first magnetic layer; and
- (b) selectively effecting either a first type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the first magnetic layer, thereby orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer while retaining the direction of magnetization of the second magnetic layer, or a second type of recording by irradiating the medium with a light beam having a power sufficient to heat the medium close to the Curie point of the second magnetic layer while applying a bias magnetic field, thereby inverting the direction of magnetization of the second magnetic layer and simultaneously orienting the direction of magnetization of the first magnetic layer in a direction that is stable with respect to the direction of magnetization of the second magnetic layer, according to an information signal.
Priority Claims (20)
Number |
Date |
Country |
Kind |
61-158787 |
Jul 1986 |
JPX |
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61-191202 |
Aug 1986 |
JPX |
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61-262034 |
Nov 1986 |
JPX |
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61-278566 |
Nov 1986 |
JPX |
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61-278567 |
Nov 1986 |
JPX |
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62-20384 |
Feb 1987 |
JPX |
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62-21675 |
Feb 1987 |
JPX |
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62-23993 |
Feb 1987 |
JPX |
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62-24706 |
Feb 1987 |
JPX |
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62-24707 |
Feb 1987 |
JPX |
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62-27082 |
Feb 1987 |
JPX |
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62-27083 |
Feb 1987 |
JPX |
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62-37736 |
Feb 1987 |
JPX |
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62-52897 |
Mar 1987 |
JPX |
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62-70273 |
Mar 1987 |
JPX |
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62-70274 |
Mar 1987 |
JPX |
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62-70278 |
Mar 1987 |
JPX |
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62-70279 |
Mar 1987 |
JPX |
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62-72559 |
Mar 1987 |
JPX |
|
62-153108 |
Jun 1987 |
JPX |
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Parent Case Info
This application is a continuation of application Ser. No. 08/237,420 filed May 3, 1994, now abandoned, which is a continuation of application Ser. No. 07/841,015 filed Feb. 25, 1992, now abandoned, which is a division of application Ser. No. 07/475,941, filed Jan. 30, 1990, now U.S. Pat. No. 5,132,945, which is a continuation of application Ser. No. 07/071,190, filed Jul. 8, 1987, now abandoned.
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Divisions (1)
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475941 |
Jan 1990 |
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Continuations (3)
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237420 |
May 1994 |
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841015 |
Feb 1992 |
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71190 |
Jul 1987 |
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