Nova Patents
EP1593753A2

Method for ion implantation

Abstract

A method for ion implanting a species into a workpiece, said method comprising placing said workpiece (12) in a processing zone of a chamber (105) having a pair of ports (155,160) near generally opposite sides of said processing zone and connected together by a conduit (150) external of said chamber, introducing into said chamber a process gas (125) comprising a first species to be implanted, generating from said process gas a plasma current and causing said plasma current to oscillate in a circulatory reentrant path comprising said conduit and said processing zone, and coupling a bias to said workpiece, and setting said bias to a level corresponding to a desired depth distribution below a surface of the workpiece at which said species is to be implanted.

EP1593753A2, drawing sheet 1
Sheet 1 of 97

Term

Term ended

Projected expiry passed 3 May 2025, 1.4 years ago.

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47 claims: 2 independent, 45 dependent

  1. 1
    A method for ion implanting a species into a workpiece, said method comprising:placing said workpiece in a processing zone of a chamber having a pair of ports near generally opposite sides of said processing zone and connected together by a conduit external of said chamber;introducing into said chamber a process gas comprising a first species to be implanted;generating from said process gas a plasma current and causing said plasma current to oscillate in a circulatory reentrant path comprising said conduit and said processing zone;and coupling a bias to said workpiece, and setting said bias to a level corresponding to a desired depth distribution below a surface of the workpiece at which said species is to be implanted.
  2. 2
    The method of Claim 1 wherein the step of generating a plasma current comprises coupling RF source power into an interior of said conduit, whereby to cause said plasma current to oscillate at a frequency of said RF source power.
  3. 3
    The method according to any one of the Claims 1 to 2 wherein said gas further comprises a co-implant species for creating crystal damage.
  4. 4
    The method according to any one of the Claims 1 to 3 further comprising regulating the rate at which the workpiece is etched during the step of ion implantation
  5. 5
    The method according to any one of the Claims 1 to 4 further comprising depositing a material from said process gas during the step of ion implanting.
  6. 6
    The method of Claim 5 further comprising regulating the rate at which the depositing of the material occurs.
  7. 7
    The method of Claim 6 further comprising regulating the rate at which the deposited material is etched during the step of ion implantation.
  8. 8
    The method according to any one of the Claims 1 to 7 wherein said workpiece comprises a dielectric thin film, and wherein said species comprises an enhancement species which enhances a characteristic of said dielectric thin film layer.
  9. 9
    The method of Claim 8 wherein said characteristic is the electrical behavior of said dielectric thin film.
  10. 10
    The method of Claim 9 wherein said dielectric thin film comprises an oxide of a semiconductor element, and said species comprises a non-oxygen element to be substituted for oxygen atoms in said dielectric thin film.
  11. 11
    The method according to any one of the Claims 1 to 10 wherein the step of placing said workpiece in the processing zone is preceded by:introducing a passivation gas containing passivation-forming chemical species;and forming a passivation layer on interior surfaces of said chamber by generating a plasma from said passivation gas.
  12. 12
    The method of Claim 11 wherein the step of generating a plasma current from said process gas is followed by:removing said process gas from said chamber;removing said workpiece from said chamber;introducing a passivation layer-removing species into said chamber;and removing said passivation layer from said interior surfaces of said chamber.
  13. 13
    The method of Claim 12 further comprising heating said interior surfaces of said chamber during the removal of said passivation layer.
  14. 14
    The method according to any one of the Claims 1 to 13 wherein:the step of applying a bias to said workpiece comprises controlling the fraction of ions impacting said workpiece at trajectories other than orthogonal to a surface of said workpiece by setting the level of said bias.
  15. 15
    The method according to any one of the Claims 1 to 14 wherein said bias comprises an RF bias coupled through a workpiece support pedestal.
  16. 16
    The method of Claim 15 wherein said RF bias has a bias frequency that is sufficiently low for ions in a plasma sheath near said workpiece to follow electric field oscillations across said sheath at said bias frequency.
  17. 17
    The method of Claim 16 wherein said RF bias comprises an RF voltage applied to the workpiece support pedestal, and wherein said bias frequency is sufficiently high so that RF voltage drops across dielectric layers on said workpiece do not exceed a predetermined fraction of the RF bias voltage applied to said workpiece support pedestal.
  18. 18
    The method according to any one of the Claims 1 to 17 further comprising providing an electrostatic chuck for holding said workpiece and comprising at least one of (a) heating apparatus and (b) cooling apparatus.
  19. 19
    The method of Claim 18 further comprising regulating an etch rate during ion implantation of at least one of:(a) the workpiece, (b) material deposited on the workpiece during ion implantation, by controlling a temperature of said workpiece using said at least one of heating apparatus and cooling apparatus.
  20. 20
    A method of ion implanting a species in a workpiece to a selected ion implantation profile depth, comprising:placing a workpiece comprising a semiconductor material on an electrostatic chuck in or near a processing region of a plasma reactor chamber;applying a chucking voltage to said electrostatic chuck;introducing into the chamber a precursor gas comprising a species to be ion implanted in said workpiece;and applying an RF bias to said electrostatic chuck, said RF bias having a bias level corresponding to said ion implantation profile depth.
  21. 21
    The method of Claim 20 wherein the workpiece further comprises dielectric material.
  22. 22
    The method according to any one of the Claims 20 to 21 wherein the semiconductor material is comprised in a deposited layer.
  23. 23
    The method according to any one of the Claims 20 to 22 wherein the semiconductor material is amorphous.
  24. 24
    The method according to any one of the Claims 20 to 23 wherein the semiconductor material is crystalline.
  25. 25
    The method according to any one of the Claims 20 to 24 further comprising controlling the temperature of the workpiece.
  26. 26
    The method according to any one of the Claims 20 to 25 further comprising depositing a material on said workpiece from said process gas during the step of ion implanting.
  27. 27
    The method according to any one of the Claims 20 to 26 further comprising coupling plasma source power into the chamber.
  28. 28
    The method of Claim 27 wherein the step of coupling plasma source power into the chamber comprises generating an oscillating plasma current in a toroidal path that passes through the process region and through an external reentrant hollow conduit.
  29. 29
    The method of Claim 28 wherein the step of generating the oscillating plasma current comprises coupling plasma RF source power into the external reentrant hollow conduit through a power applicator around said conduit.
  30. 30
    The method according to any one of the Claims 27 to 29 wherein the step of coupling plasma source power into the chamber comprises applying RF source power to said electrostatic chuck.
  31. 31
    The method according to any one of the Claims 27 to 30 wherein the step of coupling plasma source power into the chamber comprises applying RF source power to an electrode.
  32. 32
    The method of Claim 31 wherein the electrode is located approximately opposite the electrostatic chuck.
  33. 33
    The method according to any one of the Claims 27 to 32 wherein the step of coupling plasma source power into the chamber comprises inductively coupling plasma RF source power into the chamber through an inductive source power applicator.
  34. 34
    The method according to any one of the Claims 20 to 33 further comprising performing the following step prior to placing the workpiece in the chamber:forming a seasoning layer on interior surfaces of the chamber.
  35. 35
    The method of Claim 34 wherein the step of forming a seasoning layer on interior surfaces of the chamber comprises:introducing a seasoning material precursor gas into the chamber;and applying plasma source power to generate a plasma in the chamber.
  36. 36
    The method of Claim 35 wherein the seasoning material precursor gas comprises a hydrocarbon or a fluorocarbon.
  37. 37
    The method of Claim 35 or 36 wherein the seasoning material precursor gas comprises a hydride of silicon, germanium, boron, phosphorous or arsenic.
  38. 38
    The method according to any one of the Claims 35 to 37 wherein the step of applying plasma source power to generate a plasma in the chamber comprises:generating an oscillating plasma current in a toroidal path that passes through the process region and through an external reentrant hollow conduit.
  39. 39
    The method of Claim 38 wherein the step of generating the oscillating plasma current comprises coupling plasma RF source power into said external reentrant hollow conduit through a power applicator around said conduit.
  40. 40
    The method according to any one of the Claims 35 to 39 further comprising removing said seasoning layer after said species has been ion implanted into said workpiece.
  41. 41
    The method of Claim 40 wherein the step of removing the a seasoning layer comprises:introducing a seasoning material removing precursor gas into the chamber;and generating a plasma in the chamber.
  42. 42
    The method according to any one of the Claims 20 to 41 further comprising regulating the rate at which the workpiece is etched during the step of ion implantation
  43. 43
    The method according to any one of the Claims 20 to 42 further comprising depositing a material from said process gas during the step of ion implanting.
  44. 44
    The method of Claim 43 further comprising regulating the rate at which the depositing of the material occurs.
  45. 45
    The method of Claim 44 further comprising regulating the rate at which the deposited material is etched during the step of ion implantation.
  46. 46
    The method according to any one of the Claims 20 to 45 further comprising regulating an etch rate during ion implantation of at least one of:(a) the workpiece, (b) material deposited on the workpiece during ion implantation, by controlling a temperature of said workpiece using said at least one of a heating apparatus of said electrostatic chuck.
  47. 47
    The method according to any one of the Claims 1 to 46 further comprising adjusting the angular distribution of trajectories of ions near said workpiece by adjusting the pressure inside said chamber.
Independent claims47