EP1568797A2

In-situ dry clean chamber for front end of line fabrication

Abstract

A method and apparatus for removing native oxides from a substrate surface is provided. In one aspect, the chamber (100) comprises a chamber body (112) and a support assembly (300) at least partially disposed within the chamber body and adapted to support a substrate thereon. The support assembly includes one or more fluid channels (360) at least partially formed therein and capable of cooling the substrate. The chamber further comprises a lid assembly (200) disposed on an upper surface of the chamber body. The lid assembly includes a first electrode (240) and a second electrode (220) which define a plasma cavity therebetween, wherein the second electrode is adapted to connectively heat the substrate.

EP1568797A2, drawing sheet 1
Sheet 1 of 16

Term

Term ended

Projected expiry passed 25 February 2025, 1.6 years ago.

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80 claims: 17 independent, 63 dependent

  1. 1
    A processing chamber for removing native oxides from a substrate surface, comprising:a chamber body;a support assembly at least partially disposed within the chamber body and adapted to support a substrate thereon, wherein the support assembly includes one or more fluid channels at least partially formed therein and capable of cooling the substrate;and a lid assembly disposed on an upper surface of the chamber body, the lid assembly comprising a first electrode and a second electrode that define a plasma cavity therebetween, wherein the second electrode is heated and adapted to convectively heat the substrate.
  2. 7
    A chamber as claimed in any of claims 3 to 6, wherein the receiving surface comprises one or more recessed channels formed on an upper surface thereof.
  3. 9
    A chamber as claimed in any of claims claim 1 to 8, wherein the one or more fluid channels are disposed within the support assembly below the receiving surface.
  4. 13
    A chamber as claimed in any of the preceding claims, wherein the second electrode comprises a blocker assembly coupled to a showerhead.
  5. 15
    A chamber as claimed in any of the preceding claims, wherein the second electrode comprises a heating element coupled to a power source for controlling the temperature of the second electrode.
  6. 16
    A chamber as claimed in any of the preceding claims, wherein the plasma cavity is adapted to contain a plasma of reactive gases within the lid assembly.
  7. 17
    A chamber as claimed in any of the preceding claims, wherein the first electrode is coupled to a radio frequency source, microwave source, or a source of direct current, and the second electrode is grounded.
  8. 18
    A method for etching native oxides from a substrate surface, comprising:loading a substrate to be processed within a processing chamber, the chamber comprising: a chamber body;a support assembly at least partially disposed within the chamber body and adapted to support a substrate thereon, wherein the support assembly includes one or more fluid channels at least partially formed therein that are capable of cooling the substrate;and a lid assembly disposed on an upper surface of the chamber body, the lid assembly comprising a first electrode and a second electrode which define a plasma cavity therebetween, wherein the second electrode is adapted to connectively heat the substrate;generating a plasma of reactive gas within the plasma cavity;cooling the substrate by flowing a heat transfer medium through the one or more fluid channels of the support assembly;flowing the reactive gas through the second electrode to the substrate surface;etching the substrate surface with the reactive gas;heating the second electrode by applying power to a heating element in contact therewith;and heating the substrate using the heated second electrode by placing the support assembly in close proximity to the heated second electrode.
  9. 21
    A lid assembly for semiconductor processing, comprising:a first electrode comprising an expanding section that has a gradually increasing inner diameter;and a second electrode disposed opposite the first electrode, wherein a plasma cavity is defined between the inner diameter of the expanding section of the first electrode and a first surface of the second electrode.
  10. 31
    A lid assembly for semiconductor processing, comprising:a first electrode comprising an expanding section having a gradually increasing inner diameter;a second electrode disposed opposite the first electrode, wherein the second electrode comprises a plurality of gas passages formed therethrough and wherein a plasma cavity is defined between the inner diameter of the expanding section of the first electrode and a first surface of the second electrode;and a perforated plate disposed opposite a second surface of the second electrode, wherein: the perforations of the perforated plate are in fluid communication with the plurality of gas passages of the second electrode;the second electrode and the perforated plate each comprise a notched outer diameter;and the notched outer diameter of the second electrode is adapted to mount on the notched outer diameter of the perforated plate.
  11. 36
    A lid assembly for semiconductor processing, comprising:a first electrode comprising an expanding section having a gradually increasing inner diameter;a second electrode disposed opposite the first electrode, wherein the second electrode comprises a plurality of gas passages formed therethrough and wherein a plasma cavity is defined between the inner diameter of the expanding section of the first electrode and a first surface of the second electrode;a first perforated plate disposed opposite a second surface of the second electrode;and a second perforated plate disposed between the second electrode and the first perforated plate, wherein: the second electrode and the first perforated plate each comprise a notched outer diameter;the notched outer diameter of the second electrode is adapted to mount on the notched outer diameter of the first perforated plate;and at least a portion of the second perforated plate is adapted to mount to the second surface of the second electrode.
  12. 41
    A method for removing native oxides from a substrate surface, comprising:supporting the substrate surface in a vacuum chamber;generating reactive species from a gas mixture within the chamber;cooling the substrate surface within the chamber;directing the reactive species to the cooled substrate surface to react with the native oxides thereon and form a film on the substrate surface;and heating the substrate surface within the chamber to vaporize the film.
  13. 59
    A method for removing native oxides from a substrate surface within a single vacuum chamber, comprising:generating a plasma of reactive species in a first section of the chamber;cooling the substrate surface having the native oxides thereon in a second section of the chamber;flowing the reactive species from the first section to the second section to react with the cooled substrate surface;depositing a film on the cooled substrate surface;moving the substrate surface to a third section of the chamber;and heating the substrate surface in the third section of the chamber to sublimate the film.
  14. 60
    A method for removing native oxides from a substrate surface within a single processing chamber, comprising:generating a plasma of reactive species comprising nitrogen and fluorine atoms;exposing the substrate surface to the reactive species;cooling the substrate surface to a temperature below about 22°C;depositing a film of the nitrogen and fluorine atoms on the chilled substrate surface;and annealing the substrate surface to sublimate the film.
  15. 61
    A substrate support assembly, comprising:a body having one or more fluid conduits disposed therethrough;a support member disposed on a first end of the body, the support member having one or more fluid channels formed in an upper surface thereof, wherein each fluid channel is in communication with the one or more of the fluid conduits;a cooling medium source in fluid communication with the one or more fluid conduits;and a first electrode having a plurality of holes formed therethrough, the first electrode disposed on the upper surface of the support member such that each of the plurality of holes is in fluid communication with at least one of the one or more fluid channels formed in the upper surface of the support member.
  16. 72
    A substrate support assembly, comprising:a body having at least one gas conduit and at least two liquid conduits disposed therethrough;a support member disposed on a first end of the body, the support member having a channel formed in an upper surface thereof that is in fluid communication with the at least one gas conduit, the support member also having a heat exchange passage formed therein that is in fluid communication with the at least two liquid conduits;and a first electrode having a plurality of holes formed therethrough, the first electrode disposed on the upper surface of the support member such that each of the plurality of holes is in fluid communication with the channel formed in the upper surface of the support member.
  17. 79
    A method for supporting and cooling a substrate, comprising:providing a substrate support assembly comprising: a body having one or more fluid passages disposed therethrough;a support member disposed on a first end of the body, the support member having one or more fluid channels formed in an upper surface thereof each in fluid in communication with one or more of the fluid passages;and a first electrode having a plurality of holes formed therethrough, the first electrode disposed on the upper surface of the support member such that each of the plurality of holes is in fluid communication with at least one of the one or more fluid channels;applying a vacuum to the first electrode for engaging a substrate, wherein the vacuum is applied through the one or more fluid passages formed in the body;flowing a purge gas to a backside of the substrate through the one or more fluid channels formed in the support member;and cooling the substrate by flowing a cooling medium through the fluid passage formed within the body.
Independent claims17