EP0906636A1

Highly tetrahedral amorphous carbon films and methods and ion-beam source for their production

Abstract

The invention provides systems and methods for the deposition of an improved diamond-like carbon material, particularly for the production of magnetic recording media. The diamond-like carbon material of the present invention is highly tetrahedral, that is, it features a large number of the sp<3> carbon-carbon bonds which are found within a diamond crystal lattice. The material is also amorphous, providing a combination of short-range order with long-range disorder, and can be deposited as films which are ultrasmooth and continuous at thicknesses substantially lower than known amorphous carbon coating materials. The carbon protective coatings of the present invention will often be hydrogenated. In a preferred method for depositing of these materials, capacitive coupling forms a highly uniform, selectively energized stream of ions from a dense, inductively ionized plasma. Such inductive ionization is enhanced by a relatively slow moving (or "quasi-static") magnetic field, which promotes resonant ionization and ion beam homogenization.

Term

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Projected expiry passed 29 May 2017, 9.3 years ago.

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18 claims: 9 independent, 9 dependent

  1. 1
    Claims of equivalent WO 9745855 A1 WHAT IS CLAIMED IS; 1 A diamond-like material comprising:carbon in the range between about 72 and 92 atomic percent;and hydrogen in the range between about 8 and 18 atomic percent;wherein the material is amorphous, and wherein between about 15 and 85 % of carbon-carbon bonds are sp3 bonds .
  2. 2
    A method for deposition of highly tetrahedral amorphous carbon onto a substrate, the method comprising:ionizing a source material to form a plasma;confining the plasma within a plasma volume;capacitatively coupling the plasma to form a stream flowing outwardly from within the plasma volume, the stream including carbon ions from the plasma;and directing the stream onto the substrate.
  3. 7
    An ion-beam source comprising:a container defining a plasma confinement volume, the container having an opening;an antenna disposed about the plasma volume so that application of a first alternating potential to the antenna is capable of inductively ionizing a plasma therein;a coupling electrode electrically coupled to the plasma volume;and an extraction electrode disposed over the opening of the container, the extraction electrode having a surface area which is substantially less than the coupling electrode surface so that application of a second alternating potential between the coupling electrode and the extraction electrode is capable of expelling ions of the plasma through the grid.
  4. 10
    An ion-beam source as claimed m claim 7, wherein the container comprises an electrically non-conductive material .
  5. 11
    An ion-beam source as claimed m claim 10, wherein the antenna comprises a single coil separated from the plasma volume by the non-conductive material.
  6. 12
    A deposition system comprising:a container defining a plasma confinement volume, the container having an opening;an inductive coupling antenna disposed about the plasma volume;an RF potential supply coupled to the inductive coupling antenna;at least one magnetic field coil disposed adjacent the container;a field potential supply couplable to the at least one field coil to provide a magnetic field within the plasma volume;a coupling electrode having a surface electrically exposed to the plasma volume;an extraction electrode disposed over the opening of the container, the extraction electrode comprising a grid having a surface area which is substantially less than the coupling electrode surface;and an extraction power supply coupled to the coupling and extraction electrodes.
  7. 13
    An ion-beam source comprising:plasma containment means for confining a plasma within a plasma volume;inductive ionization means for inductively coupling of a first alternating current with the plasma so as to ionize the plasma within the plasma volume;a moving magnetic field generation means for resonant densification and homogenization of the ionized plasma within the plasma volume;and ion extraction means for forming a stream of ions out from the plasma volume.
  8. 15
    A method for producing an ion beam, the method comprising confining a plasma within a plasma volume;inductively ionizing the plasma within the plasma volume;and forming a stream of ions from within the plasma volume by capacitatively coupling the plasma with an extraction grid so as to self-bias the plasma relative to the grid.
  9. 16
    A method as claimed m claim 15, further comprising densifymg the plasma by applying a magnetic field within the plasma volume, wherein the field is transverse relative to the extraction grid.