Claims
- 1. The method of forming an anode comprising the steps of pressing a mixture of niobium oxide powder with at least one binder or lubricant to form the pressed anode, wherein said niobium oxide has an atomic ratio of niobium to oxygen of 1: less than 2.5.
- 2. The method of claim 1, wherein said niobium oxide is NbO.
- 3. The method of claim 1, wherein said niobium oxide comprises NbO, NbO0.7, NbO1.1, or combinations thereof.
- 4. The method of claim 1, further comprising de-binding or de-lubing the binder or lubricant.
- 5. The method of claim 4, wherein said de-binding or de-lubing is accomplished by thermally decomposing said binder or lubricant.
- 6. The method of claim 4, wherein said de-binding or de-lubing is accomplished by repeated washings in at least one solvent capable of removing said binder or lubricant.
- 7. The method of claim 4, further comprising sintering the anode in a vacuum or under an inert atmosphere.
- 8. The method of claim 1, wherein said binder or lubricant comprises an organic binder or lubricant.
- 9. The method of claim 1, wherein said binder or lubricant comprises poly(propylene carbonate), alkyd resin solution, polyethylene glycol, polyvinyl alcohol, stearic acid, or combinations thereof.
- 10. A pressed anode comprising a niobium oxide powder and at least one binder or lubricant, wherein said niobium oxide powder has an atomic ratio of niobium to oxygen of 1: less than 2.5.
- 11. The pressed anode of claim 10, wherein said niobium oxide is NbO.
- 12. The pressed anode of claim 10, wherein said niobium oxide comprises NbO, NbO0.7, NbO1.1, or combinations thereof.
- 13. The pressed anode of claim 10, wherein said binder or lubricant is an organic binder or lubricant.
- 14. The pressed anode of claim 10, wherein said binder or lubricant comprises poly(propylene carbonate), alkyd resin solution, polyethylene glycol, polyvinyl alcohol, stearic acid, or combinations thereof.
- 15. The pressed anode of claim 10, wherein said anode has a low carbon residue after removal of the binder or lubricant and after sintering.
- 16. A capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5 and being formed at a formation voltage of about 6 volts or higher.
- 17. The capacitor anode of claim 16, wherein said capacitor anode is formed at a formation voltage of from about 6 to about 130 volts.
- 18. The capacitor anode of claim 16, wherein said capacitor anode is formed at a formation voltage of from about 75 volts to about 130 volts.
- 19. The capacitor anode of claim 16, wherein said capacitor anode is formed at a formation voltage of from about 75 volts to about 100 volts.
- 20. The capacitor anode of claim 16, wherein said DC leakage is less than 15 nA/CV, wherein said DC leakage is determined at a sintering temperature of 1300° C. for 10 minutes and a formation temperature of 60° C.
- 21. The capacitor anode of claim 20, wherein said DC leakage is less than about 12 nA/CV.
- 22. The capacitor anode of claim 18, wherein said DC leakage is less than 15 nA/CV.
- 23. A niobium oxide having an atomic ratio of niobium to oxygen of 1 less than 2.5, and having a nitrogen content of from about 31,000 ppm N2 to about 130,000 ppm N2.
- 24. The niobium oxide of claim 23, wherein the atomic ratio is 1:less than 2.0.
- 25. The niobium oxide of claim 23, wherein the atomic ratio is 1 :less than 1.5.
- 26. The niobium oxide of claim 23, wherein the atomic ratio is 1:1.1.
- 27. The niobium oxide of claim 23, wherein the atomic ratio is 1:0.7.
- 28. The niobium oxide of claim 23, wherein the atomic ratio is 1:0.5.
- 29. The niobium oxide of claim 23, wherein said niobium oxide has a porous structure.
- 30. The niobium oxide of claim 23, wherein said niobium oxide has a porous structure having from about 0.1 to about 10 micrometer pores.
- 31. The niobium oxide of claim 23, wherein said niobium oxide comprises NbO, NbO0.7, NbO1.1, or combinations thereof.
- 32. The niobium oxide of claim 23, wherein said niobium oxide is formed into an electrolytic capacitor anode having a capacitance of up to about 300,000 CV/g.
- 33. The niobium oxide of claim 23, wherein said nitrogen amount is from about 31,000 ppm N2 to about 80,000 ppm N2.
- 34. The niobium oxide of claim 23, wherein said nitrogen is present in the amount of from about 50,000 ppm to about 70,000 ppm N2.
- 35. The niobium oxide of claim 23, wherein said niobium oxide is formed into an electrolytic capacitor anode, said anode having a capacitance of from about 1,000 to about 300,000 CV/g.
- 36. The niobium oxide of claim 35, wherein said capacitance is from about 60,000 to about 200,000 CV/g.
- 37. The niobium oxide of claim 23, wherein said anode has a DC leakage of from about 0.5 to about 5 nA/CV.
- 38. The niobium oxide of claim 23, wherein said niobium comprises nodular, flaked, angular, or combinations thereof.
- 39. A capacitor comprising the niobium oxide of claim 23.
- 40. A capacitor comprising the niobium oxide of claim 34.
- 41. The niobium oxide of claim 35, wherein said niobium oxide is sintered at a temperature of from about 1200° C. to about 1750° C.
- 42. The niobium oxide of claim 41, wherein said niobium oxide is sintered at a temperature of from about 1200° C. to about 1450° C.
- 43. The capacitor of claim 39, having a capacitance of from about 1,000 CV/g to about 300,000 CV/g.
- 44. The capacitor of claim 39, having a capacitance of from about 60,000 CV/g to about 200,000 CV/g.
- 45. The capacitor of claim 43, having a DC leakage of from about 0.5 to about 5 nA/CV.
- 46. The capacitor of claim 44, having a DC leakage of from about 0.5 to about 5 nA/CV.
- 47. A capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5 and being formed at a formation voltage of about 6 volts or higher, and having a DC leakage of less than 15 nA/CV wherein said DC leakage is determined from an anode sintering at 1500° C. for 10 minutes and formed at a formation voltage of 60° C.
- 48. The capacitor anode of claim 47, wherein said DC leakage is less than about 12 nA/CV.
- 49. The capacitor anode of claim 47, wherein said DC leakage is less than 6 nA/CV.
- 50. The capacitor anode of claim 47, wherein said DC leakage is less than 2 nA/CV.
- 51. The capacitor anode of claim 47, wherein said niobium oxide is NbO.
- 52. The capacitor anode of claim 47, wherein said niobium oxide is NbO, oxygen depleted NbO, niobium metal with NbO, or combinations thereof.
- 53. A capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5, and being formed at a formation voltage of about 6 volts or higher, and having a capacitance of 40,000 CV/g or greater at a sintering temperature of from about 1200° C. to about 1600° C. for 10 minutes and at a formation temperature of 85° C.
- 54. The capacitor anode of claim 53, wherein said capacitance is from about 40,000 to about 60,000 CV/g.
- 55. The capacitor anode of claim 53, wherein said niobium oxide is NbO.
- 56. The capacitor anode of claim 53, wherein said niobium oxide is NbO, oxygen depleted NbO, niobium metal with NbO, or combinations thereof.
- 57. A capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5, and being formed at a formation voltage of about 6 volts or higher and having a capacitance of 20,000 CV/g or greater, wherein said capacitance is determined at a sintering temperature of 1300° C. for 10 minutes and at a formation temperature of 85° C.
- 58. The capacitor anode of claim 57, wherein said capacitance is from about 20,000 to about 60,000 CV/g.
- 59. The capacitor anode of claim 57, wherein said formation voltage is from about 20 to about 80 volts.
- 60. The capacitor anode of claim 57, wherein said niobium oxide is NbO.
- 61. The capacitor anode of claim 57, wherein said niobium oxide is NbO, depleted NbO, niobium metal with NbO, or combinations thereof.
- 62. A capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5, wherein the powder forming the capacitor anode has a burning rate of less than 5 mm/s.
- 63. The capacitor anode of claim 62, wherein said burning rate is 2 mm/s or lower.
- 64. The capacitor anode of claim 62, wherein said burning rate is about 1 mm/s to about 5 mm/s.
- 65. A capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5, and having a minimum ignition energy of 100 mJ or greater.
- 66. The capacitor anode of claim 65, wherein said minimum ignition energy is 500 mJ or greater.
- 67. The capacitor anode of claim 65, wherein said minimum ignition energy is below 10 J.
- 68. The capacitor anode of claim 65, wherein said niobium oxide is NbO.
- 69. The capacitor anode of claim 65, wherein said niobium oxide is NbO, oxygen depleted NbO, niobium metal with NbO, or combinations thereof.
- 70. A method of forming a capacitor anode comprising a niobium oxide having an atomic ratio of niobium to oxygen of 1: less than 2.5, comprising forming said niobium oxide into the shape of an anode and sintering at a temperature of from about 1200° C. to about 1600° C. for a time of from about 1 minute to about 30 minutes;
anodizing at from about 16 to about 75 volts at a formation temperature of about 85° C.; annealing said anode at a temperature of from about 300 to about 350° C. for a time of from about 10 minutes to about 60 minutes; and manganizing said anode at a temperature of from about 220 to 280° C.
- 71. A method to at least partially reduce a niobium oxide, comprising heat treating a starting niobium oxide in the presence of a getter material in an atmosphere permitting the transfer of oxygen atoms from the starting niobium oxide to the getter material for a sufficient time and sufficient temperature such that the starting niobium oxide and said getter material form an oxygen reduced niobium oxide.
- 72. The method of claim 71, wherein said getter material is a niobium powder.
- 73. The method of claim 71, wherein said oxygen reduced niobium oxide is NbO.
- 74. The method of claim 71, wherein said oxygen reduced niobium oxide is NbO, oxygen depleted NbO, niobium metal with NbO, or combinations thereof.
- 75. The method of claim 71, wherein said atmosphere is a hydrogen containing atmosphere.
- 76. The method of claim 71, wherein said atmosphere is hydrogen.
- 77. The method of claim 71, wherein said heat treating occurs at a temperature of from about 800° C. to about 1900° C. for a time of from about 5 minutes to about 100 minutes.
Parent Case Info
[0001] This application claims the benefit of U.S. patent application Ser. No. 09/533,430 filed Mar. 23, 2000, U.S. Provisional Patent Application No. 60/229,668 filed Sep. 1, 2000, and U.S. patent application Ser. No. 09/758,705 filed Jan. 11, 2001, which are incorporated herein in their entirety by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60229668 |
Sep 2000 |
US |