Claims
- 1. A permeable membrane, comprising a porous substrate and a functional layer provided on the surface of and/or inside the porous substrate, said functional layer having a hydrogen permeation rate of 1×10−10 mol/s·m2·Pa or more, and satisfying at least one of the following properties (1) through (3), as follows:(1) Hydrogen is selectively caused to permeate preferentially to water vapor; (2) When a test tube containing ethylene glycol and sealed with said permeable membrane is placed in a 85° C. oven, the ethylene glycol decrease rate measured is 1×10−2 g/hour or less, per square centimeter (1 cm2) of the permeable membrane; and (3) When a test tube containing 5% ammonium adipate ethylene glycol solution and sealed with said permeable membrane is placed in a 85° C. oven for 2 days, the acid quantity of the solution is 5×10−3 equivalent or less, per square centimeter of said permeable membrane.
- 2. The permeable membrane according to claim 1, wherein said functional layer comprises at least one of the following ingredients (1) through (5):(1) A zeolite and/or zeolite analog; (2) Fine inorganic oxide grains; (3) A silicone rubber, silicone resin or silicone oil; (4) An organic polymer compound; and (5) Carbon.
- 3. The permeable membrane according to claim 2, wherein said zeolite and/or zeolite analog is a high silica and/or pure silica zeolite.
- 4. The permeable membrane according to claim 3, wherein the difference between the hydrogen permeation rate of the permeable membrane at room temperature after calcination and the hydrogen permeation rate at room temperature immediately after keeping the permeable membrane in contact with saturated vapor of ethylene glycol for 24 hours is 2×10−7 mol/m2·sect·Pa or less.
- 5. The permeable membrane according to claim 1, wherein said functional layer is arranged as the outermost surface layer and is covered with a silicone compound, and wherein said functional layer comprises a zeolite and/or a zeolite analog.
- 6. The permeable membrane according to claim 1, wherein said porous substrate comprises a ceramic.
- 7. The permeable membrane according to claim 1, wherein said permeable membrane has an average pore size of less than 0.5 μm.
- 8. An electrolytic capacitor, having a permeable membrane as set forth in claim 1.
- 9. The electrolytic capacitor according to claim 8, wherein said permeable membrane is installed in a sealing plug, with an elastic body positioned between said permeable membrane and said sealing plug.
- 10. The electrolytic capacitor according to claim 8, wherein the porous substrate is inorganic.
- 11. An MFI zeolite membrane, satisfying the following two conditions (1) and (2):a/b=0.3 to 1.5 (1) b/c>4.4 (2) where a is the maximum peak intensity within a 2θ range of 7.3 to 8.2 degrees, b is the maximum peak intensity within a 2θ range of 8.5 to 9.1 degrees, and c is the maximum peak intensity with a 2θ range of 13.0 to 14.2 degrees, respectively, in the diffraction pattern obtained by X-ray diffractometry using CuKα as the X-ray source (wavelength=1.54 angstroms) with the incident angle fixed at 3 degrees at a scanning speed of 2θ 4 degrees/min in a parallel optical system.
- 12. The MFI zeolite membrane according to claim 11, which has a thickness of 3 μm or less.
- 13. A method for separating at least one species of molecules by bringing a gas or liquid mixture consisting of at least two species of molecules into contact with a permeable membrane as set forth in claim 1 or with an MFI zeolite permeable membrane as set forth in claim 11, and selectively allowing at least one of said species of molecules to permeate said permeable membrane.
- 14. A method for producing a zeolite membrane containing a zeolite or zeolite analog, comprising the step of treating with water vapor a membranous substance containing a seed crystal of a zeolite or zeolite analog and silica.
- 15. A method for producing a zeolite membrane containing a zeolite or zeolite analog, comprising the steps of bringing a seed crystal of a zeolite or zeolite analog into contact with a porous substrate thereafter, coating said substrate with a solution, slurry or colloid containing silica, to form a membranous substance, and treating said membranous substance with water vapor.
- 16. The method for producing a zeolite membrane according to claim 14 or 15, wherein said water vapor is at a temperature of 80 to 200° C.
Priority Claims (2)
| Number |
Date |
Country |
Kind |
| 10-243254 |
Aug 1998 |
JP |
|
| 10-302311 |
Oct 1998 |
JP |
|
Parent Case Info
This application is a continuation of PCT/JP99/04648 filed Aug. 27, 1999.
US Referenced Citations (24)
Continuations (1)
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Number |
Date |
Country |
| Parent |
PCT/JP99/04648 |
Aug 1999 |
US |
| Child |
09/795234 |
|
US |