Claims
- 1. A method of removing metal oxides from the surface of an at least one component, comprising:
providing the at least one component that is connected to a substrate to form a target assembly wherein the substrate has at least one electrical potential selected from the group consisting of a grounded or a positive electrical potential; passing a gas mixture comprising a reducing gas through an ion generator comprising a first and a second electrode; supplying voltage to at least one of the first and the second electrodes sufficient to generate electrons that attach to at least a portion of the reducing gas and form a negatively charged reducing gas; and contacting the target assembly with the negatively charged reducing gas to reduce the metal oxides on the at least one component.
- 2. The method of claim 1 wherein the ion generator further comprises a gas inlet and a gas outlet in fluid communication with the gas inlet and wherein the second electrode is interposed between the gas inlet and the gas outlet.
- 3. The method of claim 2 wherein the ion generator further comprises a magnetic coil interposed between the gas inlet and gas outlet.
- 4. The method of claim 2 wherein the magnetic coil generates a magnetic field that ranges from 0.1 to 5,000 Wb/m2.
- 5. The method of claim 1 wherein the first electrode has a positive electric potential relative to the second electrode.
- 6. The method of claim 5 wherein the first electrode has an insulating material disposed upon at least a portion of its surface.
- 7. The method of claim 1 wherein the reducing gas is selected from the group consisting of H2, CO, SiH4, Si2H6, CF4, SF6, CF2Cl2, HCl, BF3, WF6, UF6, SiF3, NF3, CClF3, HF, NH3, H2S, straight, branched or cyclic C1 to C10 hydrocarbons, formic acid, alcohols, acidic vapors having the following formula (III):
- 8. The method of claim 7 wherein said gas mixture comprises from 0.1 to 100% by volume of hydrogen.
- 9. The method of claim 8 wherein said gas mixture comprises from 0.1 to 4% by volume of hydrogen.
- 10. The method of claim 1 wherein the gas mixture further comprises a carrier gas.
- 11. The method of claim 10 wherein the carrier gas is selected from the group consisting of nitrogen, helium, neon, argon, krypton, xenon, radon, and mixtures thereof.
- 12. The method of claim 11 wherein the carrier gas is nitrogen.
- 13. The method of claim 1 wherein the voltage ranges from 0.01 to 50 kV.
- 14. The method of claim 13 wherein the voltage ranges from 0.1 to 30.
- 15. The method of claim 1 wherein the distance between the first and the second electrode ranges from 0.1 to 30 cm.
- 16. The method of claim 15 wherein the distance between the first and the second electrode ranges from 0.5 to 5 cm.
- 17. The method of claim 1 wherein the voltage is pulsed.
- 18. The method of claim 17 wherein the frequency of the voltage pulse ranges from 0 to 100 kHz.
- 19. The method of claim 1 wherein the first electrode is grounded.
- 20. The method of claim 1 wherein the second electrode is grounded.
- 21. The method of claim 1 wherein the electrons are generated in the supplying step by at least one method selected from the group consisting of cathode emission, gas discharge, or combinations thereof.
- 22. The method of claim 21 wherein the electrons are generated by cathode emission.
- 23. The method of claim 22 wherein the cathode emission method is at least one method selected from the group consisting of field emission, thermal emission, thermal-field emission, photoemission, and electron beam emission.
- 24. The method of claim 23 wherein the cathode emission method is thermal-field emission.
- 25. A method of fluxless soldering of an at least one component comprising solder and metal oxides on at least one surface, comprising:
providing the at least one component which is connected to a substrate as a target assembly wherein the substrate has at least one electrical potential selected from the group consisting of a grounded or a positive electrical potential; passing a gas mixture comprising a reducing gas through an ion generator comprising a gas inlet, a gas outlet in fluid communication with the gas inlet, an anode, a cathode, and a magnetic coil wherein the magnetic coil is interposed between the gas inlet and the gas outlet wherein the gas outlet is proximal to the target assembly; supplying energy to at least one of the cathode and the anode to generate electrons that attach to at least a portion of the reducing gas passing through the ion generator thereby forming a negatively charged reducing gas at the gas outlet; supplying energy to the magnetic coil to provide a magnetic field proximal to the negatively charged reducing gas; and contacting the target assembly with the negatively charged reducing gas to reduce the metal oxides on the at least one surface of the at least one component.
- 26. The method of claim 25 wherein the anode comprises an insulating material disposed upon at least a portion of its surface.
- 27. The method of claim 25 wherein the temperature of the gas mixture within the ion generator ranges from 25° C. to 3,500° C.
- 28. The method of claim 27 wherein the temperature of the gas mixture within the ion generator ranges from 150° C. to 1,500° C.
- 29. The method of claim 25 wherein the temperature of the cathode ranges from 25° C. to 3,500° C.
- 30. The method of claim 29 wherein the temperature of the cathode ranges from 150° C. to 1,500° C.
- 31. The method of claim 25 wherein the energy in the supplying step is at least one source selected from the group consisting of an electric energy source, an electromagnetic energy source, a thermal energy source, a photo energy source, and combinations thereof.
- 32. The method of claim 25 wherein the energy is applied to the cathode.
- 33. The method of claim 25 wherein the pressure within the ion generator ranges from 1 to 20 atmospheres.
- 34. The method of claim 33 wherein the pressure within the ion generator ranges from 1 to 5 atmospheres.
- 35. The method of claim 25 wherein the cathode is composed of a material selected from the group consisting of brass, stainless steel, copper, nickel chromium, aluminum, tungsten, graphite, metal oxides deposited on a metal substrate, and mixtures thereof.
- 36. The method of claim 35 wherein the cathode is composed of nickel chromium.
- 37. The method of claim 25 wherein the cathode has a geometry selected from the group consisting of a wire, a coil, a screen, a rod, a rod with a sharp tip, an array of rods with sharp tips, a brush comprised of wires, a plate with protrusions emanating from at least one of its surfaces, a rod with protrusions emanating from its surface, and mixtures thereof.
- 38. The method of claim 25 wherein the distance between the component and the outlet of the ion generator ranges from 0.1 to 30 cm.
- 39. The method of claim 38 wherein the distance between the component and the outlet of the ion generator ranges from 0.5 to 5 cm.
- 40. The method of claim 25 wherein the remote ion generator is moved.
- 41. The method of claim 25 wherein the target assembly is moved.
- 42. The method of claim 41 wherein the remote ion generator is moved.
- 43. The method of claim 25 wherein the method is used in at least one process from the group consisting of reflow soldering, wave soldering, wafer bumping, metal plating, brazing, welding, surface cleaning, thin film de-oxidation, and mixtures thereof.
- 44. An apparatus for generating a negatively charged ionic reducing gas, the apparatus comprising:
an enclosure defining an interior hollow wherein at least a portion of the enclosure comprises an anode connected to a first voltage level; a gas inlet and a gas outlet that is in fluid communication with the interior hollow; and a cathode residing within the interior hollow and interposed between the gas inlet and the gas outlet wherein the cathode is connected to a second voltage level which has a negative bias relative to the first voltage level.
- 45. The apparatus of 44 further comprising a magnetic coil residing within the interior hollow wherein the magnetic coil is connected to an energy source.
- 46. The apparatus of 44 further comprising a magnetic coil residing outside the interior hollow wherein the magnetic coil is connected to an energy source.
- 47. The apparatus of claim 44 wherein the anode has an insulating material disposed upon at least a portion of its surface.
- 48. The apparatus of claim 44 wherein the opening of the gas outlet is smaller than the opening of the gas inlet.
- 49. The apparatus of claim 42 wherein the gas outlet comprises at least one selected from the group consisting of a flow restricting opening, a backpressure regulator, a flow controller, and mixtures thereof.
- 50. An apparatus for generating a negatively charged ionic reducing gas, the apparatus comprising:
a first chamber comprising: at least two electrodes wherein a bias in electrical potential is applied between the at least two electrodes; a first gas inlet to receive a reducing gas; and a gas outlet to release the negatively charged ionic reducing gas; and a second chamber which encloses the first chamber and comprises a second gas inlet to receive a carrier gas wherein the second gas inlet is in fluid communication with the first chamber and the reducing gas and the carrier gas form a gas mixture within the first chamber.
- 51. The apparatus of claim 50 wherein the concentration of reducing gas in the gas mixture is about 4% or less by volume.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation-in-part of U.S. patent application Ser. No. 10/425,426, filed Apr. 28, 2003, the disclosure of which is incorporated herein by reference in its entirety.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10425426 |
Apr 2003 |
US |
Child |
10819277 |
Apr 2004 |
US |