Claims
- 1. Magnetic recording media comprising:.
a substrate; a magnetic layer disposed over the substrate; and a protective layer disposed over the magnetic layer, the protective layer comprising a highly tetrahedral amorphous carbon.
- 2. A recording media as in claim 1, wherein the highly tetrahedral amorphous carbon of the protective layer includes more than about 35% sp3 carbon-carbon bonds.
- 3. A recording media as in claim 1, wherein the highly tetrahedral amorphous carbon of the protective layer includes more than about 70% sp3 carbon-carbon bonds.
- 4. A recording media as in claim 1, wherein the sp3 carbon-carbon bonds are at least in part formed by directing an energized stream of carbon ions toward the substrate.
- 5. A recording media as in claim 1, wherein the density of the protective layer is more than 2.5 g/cm3.
- 6. A recording media as in claim 1, wherein the highly tetrahedral amorphous carbon of the protective layer does not include macroparticles.
- 7. A recording media as in claim 1, wherein the protective layer has a hardness of over about 50 GPa.
- 8. A recording media as in claim 1, wherein the protective layer has a thickness of less than about 75 A.
- 9. A recording media as in claim 1, wherein the highly tetrahedral amorphous carbon of the protective layer further comprises hydrogen.
- 10. A recording media as in claim 9, wherein the protective layer comprises between about 8 and 18 atomic percent hydrogen.
- 11. A recording media as in claim 1, wherein the highly tetrahedral amorphous carbon of the protective layer further comprises nitrogen.
- 12. A recording media as in claim 11, wherein the protective layer comprises between about 4 and 30 atomic percent nitrogen.
- 13. A method for enhancing an ion beam, the ion beam produced by inductively ionizing a plasma within a plasma volume and capacitatively coupling the plasma so as to form a stream of ions from within the plasma volume, the method comprising:
moving a magnetic field through the plasma volume to promote even resonant inductive ionization and homogenize the ion beam.
- 14. A method as claimed in claim 13, wherein moving the magnetic field comprises selectively energizing magnetic coils disposed about the plasma volume.
- 15. A method as claimed in claim 13, wherein the magnetic field rotates through the plasma volume with a frequency which is much less than the frequency of an alternating induction potential.
- 16. A method as claimed in claim 13, wherein the magnetic field is transverse and rotates about an axis which is substantially normal to a capacitatively coupled extraction grid.
- 17. A method as claimed in claim 13, wherein the magnetic field rotates with a frequency of less than 10,000 Hz.
- 18. An inductive ionization resonance system for use with an ion-beam source including an antenna disposed about a plasma volume for inductively ionizing a plasma therein, a coupling electrode exposed to the plasma volume, and an extraction electrode disposed over an opening of the plasma volume so that the extraction electrode is capable of extracting a stream of ions of the plasma therethrough by capacitive coupling, the system comprising at least one coil disposed adjacent the plasma volume, the at least one coil capable of moving a transverse magnetic field through the plasma volume to homogenize the stream of ions.
- 19. A system as claimed in claim 18, further comprising a plurality of coils disposed about the container so that the magnetic field can be moved within the plasma volume by selectively energizing one or more coils.
- 20. A system as claimed in claim 19, wherein the plurality of coils are radially disposed about the axis.
- 21. A system as claimed in claim 18, wherein the plasma volume substantially defines a length and a diameter, wherein the opening is disposed at one end of the length, and wherein the length is between about one third the diameter and three times the diameter.
- 22. Magnetic recording media comprising:
a substrate; a magnetic layer disposed over the substrate; and a protective layer disposed over the magnetic layer, the protective layer comprising a highly tetrahedral amorphous carbon having a density of more than 2.5 g/cm3.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a divisional of and claims the benefit of priority from U.S. patent application Ser. No. 09/165,513, filed Oct. 2, 1998, which is a divisional of U.S. patent application Ser. No. 08/761,336, now U.S. Pat. No. 5,858,477, filed Dec. 10, 1996, which is a continuation-in-part of and claims priority from U.S. Provisional Patent Applications Serial No. 60/018,793, filed May 31, 1996, and Serial No. 60/018,746, filed May 31, 1996, the full disclosures of which are incorporated herein by reference.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60018746 |
May 1996 |
US |
|
60018793 |
May 1996 |
US |
Divisions (2)
|
Number |
Date |
Country |
Parent |
09165513 |
Oct 1998 |
US |
Child |
10350498 |
Jan 2003 |
US |
Parent |
08761336 |
Dec 1996 |
US |
Child |
09165513 |
Oct 1998 |
US |