Claims
- 1. An electroplating cell for plating a planar face of a substrate with a metal layer, comprising a plating bath containing an electrolyte in which said substrate is immersed in a cathode chamber of the bath, sparger means adapted to introduce the electrolyte into the cathode chamber, an anode chamber in which an anode is disposed and which contains a quantity of metal that is consumed during plating, a weir which separates said anode chamber from said cathode chamber and permits the electrolyte to spill over from the cathode chamber into the anode chamber, said weir including means for permitting metal ions to pass through from the anode chamber into said cathode chamber, drain outlet means adapted to carry electrolyte and any entrained particulate matter from the anode chamber; means for holding the substrate in the cathode chamber; means coupled between the drain outlet and the sparger means to remove any particulate matter from said electrolyte and return the electrolyte through a return conduit to said sparger means; a fluid powered rotary blade disposed in said bath and having an edge disposed generally in a plane spaced from the planar face of the substrate, and having fluid powered motor means formed therewith for rotating the blade, including means coupled to said return conduit to receive a flow of said electrolyte as motive power therefor; and megasonic transducer means in communication with said plating cell for applying to the solution in said cell acoustic energy at a megasonic frequency.
- 2. An electroplating cell according to claim 1 wherein said motor means includes an annular turbine having a generally circular opening therethrough, said annular turbine being mounted in a circular mount therefor in said bath, such that the opening is in registry with the planar face to be plated, and wherein said blade is mounted on said annular turbine to extend radially towards a center of said circular opening.
- 3. An electroplating cell according to claim 1 wherein the blade has a pitch and a rotational direction such that when the blade is rotated the blade pulls the electrolyte away from said substrate.
- 4. An electroplating cell according to claim 1 wherein said blade is spaced from said substrate a distance of about one-half inch or less.
- 5. A process of plating a planar face of a substrate with a metal layer in an electroplating cell wherein a cathode chamber of a plating bath contains an electrolyte in which the planar face of said substrate is immersed, said substrate being held in a plating position in said cathode chamber, an anode in an anode chamber contains a quantity of metal that is consumed during plating, a weir separates said anode chamber from said cathode chamber and permits the electrolyte to spill over from the bath into the anode chamber, said weir including means permitting metal ions to pass through from the anode chamber into said cathode chamber, drain outlet means carry electrolyte and any entrained particulate matter from the anode chamber; means coupled between the drain outlet and the sparger means remove any particulate matter from said electrolyte and return the electrolyte through a return conduit to said sparger means; and a fluid powered rotary blade disposed in said bath rotates at a spacing from the planar face of the substrate; the process comprising: circulating said electrolyte through said return conduit and said sparger into said bath to create a transverse flow of said electrolyte across said planar face; applying a plating current between said anode and said planar face to effect cathodic deposition of said metal onto said planar face; supplying a portion of the electrolyte from said return conduit into motive means for rotating said blade; and wherein said motive means includes an annular turbine having a generally circular opening therethrough, said annular turbine being mounted in a circular mount therefor in said bath, such that the circular opening is in registry with the planar face to be plated, and wherein said blade is mounted on said annular turbine to extend radially towards a center of said circular opening; said step of supplying a portion of said electrolyte into said motive means includes injecting said electrolyte into said circular mount so as to urge vanes on said annular turbine into rotation; and applying megasonic acoustic energy to the electrolyte in said cathode chamber.
Parent Case Info
This invention is a continuation-in-part of my application Ser. No. 08/731,508, filed Oct. 15, 1996, now U.S. Pat. No. 5,683,564, and is also a continuation-in-part of my application Ser. No. 08/873,154, filed Jun. 11, 1997, now U.S. Pat. No. 5,865,894.
US Referenced Citations (11)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
731508 |
Oct 1996 |
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