Claims
- 1. A reference electrode comprising:
(a) a reference sensor; (b) a bridge electrolyte channel in fluid communication with said reference sensor; and (c) a connector channel connected to the bridge electrolyte channel via a bridge electrolyte port, said connector channel comprising a sample inlet channel and a sample outflow channel through which a sample may flow, and a bridge electrolyte well for retaining a volume of a bridge electrolyte solution; wherein said bridge electrolyte well is shaped to provide a liquid junction between the sample and the bridge electrolyte solution.
- 2. The reference electrode of claim 1, wherein the liquid junction comprises a surface area in the range of about 0.5 mm2 to about 10 mm2.
- 3. The reference electrode of claim 1, wherein said reference sensor comprises:
(a) a support substrate; (b) a silver layer (Ag) deposited on said support substrate; (c) a silver chloride (AgCl) layer deposited on said Ag layer; (d) a glaze layer deposited on at least part of said AgCl layer; and (e) a gasket disposed on said glaze layer.
- 4. The reference electrode of claim 3, wherein said support substrate comprises a polymeric material and/or a ceramic material.
- 5. The reference electrode of claim 4, wherein said polymeric material comprises polyvinyl chloride (PVC), polyethylene, polycarbonate, polyacrylate and/or polyimide.
- 6. The reference electrode of claim 4, wherein said ceramic material comprises aluminum oxide and/or silicium dioxide.
- 7. The reference electrode of claim 3, wherein one or more of said layers are screen printed layers or vapor deposited layers.
- 8. The reference electrode of claim 3, wherein said Ag layer is at least about 1 μm to about 15 μm thick.
- 9. The reference electrode of claim 3, wherein said Ag layer is at least about 1 μm thick.
- 10. The reference electrode of claim 3, wherein said AgCl layer is deposited on said Ag by electrodeposition on said Ag with a chloride electrolyte solution of between about 0.01 M and 1.0 M at a current density of between about 0.005 and about 0.5 mA/mm2 for about 30 seconds to about 20 minutes.
- 11. The reference electrode of claim 10, wherein said chloride electrolyte solution comprises NaCl, KCl, and/or CaCl2.
- 12. The reference electrode of claim 11, wherein said chloride electrolyte solution has a pH range of about pH 1 to about pH 7, about pH 1 to about pH 5, or about pH 1 to pH 2.
- 13. The reference electrode of claim 3, wherein said glaze layer comprises alumina and/or silica.
- 14. The reference electrode of claim 13, wherein said glaze layer is at least about 10 μm thick.
- 15. The reference electrode of claim 14, wherein said glaze layer has a thickness of between about 10 μm and about 500 μm.
- 16. The reference electrode of claim 3, wherein said gasket layer comprises polyurethane, silicone rubber, PVC, viton®, natural rubber and/or synthetic rubber.
- 17. The reference electrode of claim 15, wherein said gasket is at least about 50 μm thick.
- 18. The reference electrode of claim 1, wherein said connector channel comprises a polymeric or metallic material that does not react with, or dissolve in, said bridge electrolyte solution.
- 19. The reference electrode of claim 18, wherein said polymeric material is a molded or machinable plastic.
- 20. The reference electrode of claim 19, wherein said polymeric material comprises acrylic, plexiglas®, lexan®, polycarbonate, and/or PVC.
- 21. The reference electrode of claim 18, wherein said metallic material comprises stainless steel, aluminum and/or platinum.
- 22. The reference electrode of claim 1, wherein said bridge electrolyte well is a round bottom well.
- 23. The reference electrode of claim 1, wherein said bridge electrolyte well is a flat bottom well.
- 24. The reference electrode of claim 1, wherein said bridge electrolyte well is a cone-shaped well.
- 25. The reference electrode of claim 1, wherein at least one of said sample outflow channel and said sample inlet channel each form a tilt angle of about 90° to about 180° relative to the longitudinal axis of the bridge electrolyte channel.
- 26. The reference electrode of claim 1, wherein said connector channel is located at a distance range from the reference sensor of between about 2 mm to about 10 mm, between about 2 mm to about 15 mm, or between about 2 mm to about 30 mm.
- 27. The reference electrode of claim 1, wherein said sample inlet channel is about 1 mm in diameter.
- 28. The reference electrode of claim 1, wherein said bridge electrolyte channel is about 0.5 mm in diameter.
- 29. The reference electrode of claim 27, wherein said bridge electrolyte channel is about 0.5 mm in diameter.
- 30. The reference electrode of claim 1, wherein said sample outflow channel is about 2 mm in diameter.
- 31. The reference electrode of claim 27, wherein said sample outflow channel is about 2 mm in diameter.
- 32. The reference electrode of claim 28, wherein said sample outflow channel is about 2 mm in diameter.
- 33. The reference electrode of claim 1, wherein said sample outflow channel and said sample inlet channel comprise a flexible tube that is about 1 mm to about 20 mm in diameter.
- 34. The reference electrode of claim 1, wherein said bridge electrolyte solution comprises KCl saturated with AgCl, with a chloride ion solution of about 0.1 M to about 0.5 M at the temperature said solution is stored and used.
- 35. A method for using a liquid junction reference electrode, comprising the steps of:
(a) providing a reference electrode comprising a reference sensor; a bridge electrolyte channel in fluid communication with said reference sensor; and a connector channel connected to the bridge electrolyte channel via a bridge electrolyte port, said connector channel comprising a sample inlet channel and a sample outflow channel through which a sample may flow, and a bridge electrolyte well for retaining a volume of a bridge electrolyte solution; wherein said bridge electrolyte well is shaped to provide a liquid junction between the sample and the bridge electrolyte solution. (b) providing a calibrating solution or a sample to said sample inlet channel; (c) providing a bridge electrolyte solution to said bridge electrolyte inlet; (d) providing a force to said sample so that it flows toward said bridge electrolyte port; (e) providing a force to said bridge electrolyte solution so that it flows toward said bridge electrolyte port; (f) forming a liquid junction between said sample and said bridge electrolyte solution at said bridge electrolyte well with a surface area in the range of about 1 mm2 to about 10 mm2; and (g) taking a measurement.
RELATED APPLICATIONS
[0001] This application claims priority to provisional patent application Serial No. 60/274,097 filed in the U.S. Patent Office on Mar. 7, 2001, the entire contents of which is incorporated by reference herein.
Provisional Applications (1)
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Number |
Date |
Country |
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60274097 |
Mar 2001 |
US |