EP1174902A2

Coaxial electromagnet in a magnetron sputtering reactor

Abstract

A magnetron sputter reactor (10) capable of ionizing 15% or more of the metal atoms sputtered from the target (16). A small magnetron (36) having closed bands of opposed magnetic polarity is rotated about the center of the target (16), and a large amount of power is applied to the target. Thereby the effective power density determined by the magnetron area is increased. A DC coil (40) is wrapped around the space between the target (16) and the substrate (24) being sputter coated to generate an axial magnetic field to guide the metal ions towards the substrate (24). The pedestal electrode (22) supporting the substrate (24) may be negatively biased to accelerate the metal ions to deep within high aspect-ratio holes.

EP1174902A2, drawing sheet 1
Sheet 1 of 3

Term

Term ended

Projected expiry passed 6 July 2021, 5.2 years ago.

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18 claims: 3 independent, 15 dependent

  1. 1
    A sputter reactor, comprising:a vacuum chamber having sidewalls;a sputtering target sealed to but electrically isolated from said sidewalls of said vacuum chamber and configured to be electrically biased;a magnetron principally disposed on one side of a central axis of said chamber at a backside of said target and rotatable about said axis;a pedestal for supporting a substrate to be sputter coated with material of said target while disposed in opposition to said target along said sidewalls;and means for producing a magnetic field extending along said central axis in a region between said target and said pedestal.
  2. 2
    The reactor of Claim 1, wherein said means comprise a coil wrapped around said sidewalls and configured to be electrically powered to produce said magnetic field.
  3. 3
    The sputter reactor of Claim 2, further comprising a DC power supply connectable to said coil.
  4. 4
    The sputter reactor of Claim 2, further comprising an AC power supply having a frequency of less than 1kHz connectable to said coil.
  5. 5
    The sputter reactor of Claim 2, wherein said magnetic field produced by said coil is incident upon said substrate supported by said pedestal at an angle deviating by no more than 20° from said central axis.
  6. 6
    The sputter reactor of Claim 5, wherein said angle is no more than 10°.
  7. 7
    The sputter reactor of Claim 2, wherein said substrate is substantially circular and a spacing between said target and said pedestal is larger than 125% of a diameter of said substrate.
  8. 8
    The sputter reactor of Claim 1, wherein said magnetron comprises an inner pole of a first magnetic polarity and having a first total magnetic flux and an outer pole of a second magnetic polarity opposite said first magnetic polarity and having a second total magnetic flux larger than said first total magnetic flux.
  9. 9
    The sputter reactor of Claim 8, wherein said magnetic means creates magnetic field of said second magnetic polarity in a region between said target and said pedestal.
  10. 10
    A sputter reactor, comprising:a vacuum chamber having sidewalls;a sputtering target sealed to said sidewalls;a magnetron disposed at a back of said target and rotatable about a central axis;a pedestal for supporting a substrate to be sputter coated with material of said target while in opposition to said target along said sidewalls;a coil wrapped about said central axis and extending from said target to a distance of at least 75% along a path from said target to said pedestal;and a DC power supply connectable to said coil.
  11. 11
    The sputter reactor of Claim 10, wherein said magnetron comprises an inner pole producing a magnetic field of a first polarity adjacent to a face of said target and an outer pole surround said inner pole and producing a magnetic field of a second polarity adjacent to a face of said target, and wherein said coil and DC power supply create a magnetic field of said first polarity in an interior thereof.
  12. 12
    The sputter reactor of Claim 11, wherein said inner pole produces a first total magnetic flux and said outer pole produces a second total magnetic flux larger than said first total magnetic flux.
  13. 13
    A method of sputtering, comprising the steps of:mounting within a vacuum chamber a substrate to be sputter coated in opposition to a sputtering target;rotating a magnetron disposed on a side of said target opposite said substrate about a central axis of said vacuum chamber;applying electrical power to said target to sputter particles from said target;and applying a DC magnetic field extending at least partially along said central axis from said target to said substrate to guide ionized ones of said sputter particles towards said substrate.
  14. 14
    The method of Claim 13, wherein said electrical power is DC electrical power.
  15. 15
    The method of Claim 13, further comprising inducing a negative DC bias on said substrate to accelerate said ionized sputter particles towards said substrate.
  16. 16
    The method of Claim 15, wherein said ionized ones of said sputter particles constitute at least 10% of said sputter particles.
  17. 17
    The method of Claim 13, wherein said DC magnetic field has a strength of more than 15 and less than 100 gauss.
  18. 18
    The method of Claim 13, comprising maintaining a first pressure of a working gas in said vacuum chamber to excite a plasma of said working gas to effect said sputtering of said particles and thereafter maintaining a second pressure of said working gas less than said first pressure to continue to effect said sputtering of said particles.