Claims
- 1. An anodic double layer gasochromic sensor structure for optical detection of hydrogen in improved response time and with improved optical absorption real time constants, comprising:
a substrate; a nickel-tungsten oxide layer coated on said substrate; and a palladium layer coated on said nickel-tungsten oxide layer.
- 2. A method of preparing an improved gasochromic sensor for optical detection of hydrogen with improved response time and improved optical absorption real time constants, comprising:
providing a substrate; depositing a tungsten-doped nickel oxide layer on said substrate; and depositing a palladium layer onto said tungsten-doped nickel oxide layer.
- 3. An improved method of optically detecting hydrogen with improved response time and improved optical absorption real time constants, comprising:
subjecting an anodic double layer gasochromic sensor structure comprising a substrate, a layer of tungsten-doped nickel oxide coated on said substrate, and a layer of palladium coated on said tungsten-doped nickel oxide to an environment comprising hydrogen gas to cause a reaction of palladium and hydrogen to dissociate said hydrogen gas into H atoms on said palladium and to diffuse said H atoms into a W—NiOx film to cause an anodic coloration in accordance with the equation: Ni3+⇄Ni2+and to cause an anodic coloration in accordance with the equation: Pd⇄PdHx
- 4. The anodic double layer gasochromic sensor structure of claim 1 wherein said palladium layer is 10 nm.
- 5. The method of claim 2 wherein said tungsten-doped nickel oxide layer is deposited by reactive sputtering.
- 6. The method of claim 5 wherein said absorption change is within a real time constant of about 10 seconds.
- 7. The anodic double layer gasochromic sensor structure of claim 4 wherein said tungsten-doped nickel oxide layer and said palladium layer comprise anodic coloration materials.
- 8. The method of claim 6 wherein said palladium layer is evaporated onto said tungsten-doped nickel oxide layer.
- 9. The method of claim 8 wherein said substrate is an optical fiber and said tungsten-doped nickel oxide on which said palladium layer is coated is placed onto said optical fiber.
- 10. A method of optically detecting hydrogen gas with improved response time and improved optical adsorption real time constants that eliminates an ignition energy source at the leak site, thereby limiting the risk of explosion, comprising:
subjecting an anodic double layer gasochromic sensor structure comprising a optical fiber, a layer of tungsten-doped nickel oxide coated on said optical fiber, and a layer of palladium coated on said tungsten-doped nickel oxide to an environment comprising hydrogen gas to cause a reaction of palladium and hydrogen to dissociate said hydrogen gas into H atoms on said palladium and to diffuse said H atoms into a W—NiOx film to cause an anodic coloration in accordance with the equation: Ni3+⇄Ni2+said layer of tungsten-doped nickel oxide coated with palladium being placed within an optical fiber.
Parent Case Info
[0001] This application claims priority from U.S. Provisional Application Serial No. 60/202,501 filed May 5, 2000.
CONTRACTUAL ORIGIN OF THE INVENTION
[0002] The United States Government has rights in this invention under Contract No. DE-AC36-99GO10337 between the United States Department of Energy and the National Renewable Energy Laboratory, a division of the Midwest Research Institute.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/US01/14381 |
5/5/2001 |
WO |
|