Nova Patents
EP1593756A1

CVD process.

Abstract

A low temperature process for depositing a coating containing any of silicon, nitrogen, hydrogen or oxygen on a workpiece includes placing the workpiece in a reactor chamber facing a processing region of the chamber, introducing a process gas containing any of silicon, nitrogen, hydrogen or oxygen into the reactor chamber, generating a torroidal RF plasma current in a reentrant path through the processing region by applying RF plasma source power at an HF frequency on the order of about 10 MHz to a portion of a reentrant conduit external of the chamber and forming a portion of the reentrant path, applying RF plasma bias power at an LF frequency on the order of one or a few MHz to the workpiece, and maintaining the temperature of the workpiece under about 100 degrees C.

EP1593756A1, drawing sheet 1
Sheet 1 of 97

Term

Term ended

Projected expiry passed 3 May 2025, 1.4 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

24 claims: 1 independent, 23 dependent

  1. 1
    A low temperature process for depositing a coating containing any of a semiconductor element, nitrogen, hydrogen or oxygen on a workpiece, said process comprising:placing the workpiece in a reactor chamber facing a processing region of the chamber;introducing a process gas containing any of a semiconductor element, nitrogen, hydrogen or oxygen into the reactor chamber;an generating a torroidal RF plasma current in a reentrant path through the processing region by applying RF plasma source power at a first frequency to a portion of a reentrant conduit external of the chamber and forming a portion of the reentrant path.
  2. 2
    The process of Claim 1 further comprising applying an RF plasma bias voltage at a second frequency to the workpiece.
  3. 3
    The process of Claim 1 or 2further comprising:setting conformality of the coating within a range between conformal and non-conformal and while setting stress in the coating within a range between compressive stress and tensile stress.
  4. 4
    The process of Claim 3 wherein:the step of setting conformality comprises setting said RF plasma source power at a level anywhere within a range between a maximum source power at which the coating is deposited conformally and a minimum source power at which the coating is deposited non-conformally;and the step of setting stress comprises controlling the stress by applying an RF bias voltage corresponding to a desired level of stress.
  5. 5
    The process of Claim 4 wherein the step of controlling the stress with an RF bias voltage comprises applying an RF bias voltage to said workpiece corresponding to a bias power level anywhere within a range between a maximum bias power at which the coating is deposited with a compressive stress and a minimum or zero bias power at which the coating is deposited with a tensile stress.
  6. 6
    The process of Claim 4 wherein said maximum source power corresponds to a conformality ratio in excess of about 0.5 and said minimum source power corresponds to a conformality ratio not exceeding about 0.1.
  7. 7
    The process of Claim 5 wherein said minimum bias power corresponds to a stress level in the coating of about +1 gigaPascal and said maximum bias power corresponds to a stress level in the coating of about -1 gigaPascal.
  8. 8
    The process according to any one of the Claims 1 to 7 further comprising:pre-treating the chamber by coating interior surfaces of the chamber with a coating containing at least one of silicon, nitrogen, hydrogen or oxygen prior to placing the workpiece in the chamber.
  9. 9
    The process according to any one of the Claims 1 to 8 further comprising:performing a post deposition ion implantation process on the workpiece in the chamber after the deposition of the coating is complete, by generating in the reentrant path a torroidal RF plasma current comprising ions to be implanted and applying a bias voltage to the workpiece corresponding to a desired ion implantation depth.
  10. 10
    The process of Claim 9 wherein said post deposition ion implantation process comprises:ion bombarding the workpiece with ions having a kinetic energy corresponding to an implant depth at the level of the interface between the coating and an underlying layer of the workpiece on which the coating was deposited, so as to enhance the adhesion of the coating.
  11. 11
    The process of Claim 9 wherein said post deposition ion implantation process comprises:implanting ions in the coating of a selected species so as to enrich the content of said species in the coating.
  12. 12
    The process of Claim 11 wherein said content is enriched beyond a stochiometric ratio.
  13. 13
    The process according to any one of the Claims 11 to 12 wherein said selected species comprises nitrogen, whereby said post deposition ion implantation process enhances the dielectric constant of the coating.
  14. 14
    The process according to any one of the Claims 11 to 12 wherein said selected species comprises a light species of a class comprising hydrogen or helium, whereby said post deposition ion implantation process adjusts the stress of the coating.
  15. 15
    The process according to any one of the Claims 9 to 14 wherein said post deposition ion implantation process comprises:implanting ions in the coating of a selected species not compatible with plasma chemical vapor deposition.
  16. 16
    The process according to any one of the Claims 9 to 15 further comprising a flash anneal step having at least one of:(a) a sufficiently low temperature, (b) a sufficiently short duration, to limit a diffusion length in the workpiece below a feature size on the order of tens of nanometers.
  17. 17
    The process according to any one of the Claims 1 to 16 wherein the workpiece has a high aspect ratio opening which the coating is to fill, said process further comprising:employing a nitrogen-containing process gas at the beginning of the deposition process.
  18. 18
    The process of Claim 17 further comprising:increasing the oxygen content of the process gas as the high aspect ratio opening begins to fill up with the coating, while decreasing the nitrogen content of said process gas, until at least nearly all of the nitrogen content has been replaced by oxygen content when the high aspect ratio opening is at least nearly filled with the coating.
  19. 19
    The process of Claim 18 wherein said plasma source power level is set to produce a non-conformal coating.
  20. 20
    The process of Claim 18 wherein said plasma source power level is set of produce an at least nearly conformal coating.
  21. 21
    The process according to any one of the Claims 2 to 20 wherein said first frequency is an HF frequency and said second frequency is an LF frequency.
  22. 22
    The process according to any one of the Claims 2 to 20 wherein said first and second frequencies are the same frequency.
  23. 23
    The process according to any one of the Claims 2 to 22 further comprising:prior to depositing the coating, successively masking one of (a) a set of N-channel device structures in the workpiece and (b) a set of P-channel device structures in the workpiece while unmasking or leaving unmasked the other set;setting said RF bias voltage at a level at which the coating is deposited with a compressive stress if the unmasked set consists of the P-channel devices and with a tensile stress if the unmasked set consists of N-channel devices.
  24. 24
    The process according to any one of the Claims 1 to 23 further comprising maintaining the temperature of the workpiece near or below about 100 degrees C.
Independent claims24