
doi: 10.2172/935171
Optically-based hydrogen sensors promise to deliver an added level of safety as hydrogen and fuel cell technologies enter the mainstream. More importantly, they offer reduced power consumption and lower cost, which are desirable for mass production applications such as automobiles and consumer appliances. This program addressed two of the major challenges previously identified in porous optrode-based optical hydrogen sensors: sensitivity to moisture (ambient humidity), and interference from the oxygen in air. Polymer coatings to inhibit moisture and oxygen were developed in conjunction with newer and novel hydrogen sensing chemistries. The results showed that it is possible to achieve sensitive hydrogen detection and rapid response with minimal interference from oxygen and humidity. As a result of this work, a new and more exciting avenue of investigation was developed: the elimination of the porous optrode and deposition of the sensor chemistry directly into the polymer film. Initial results have been promising, and open up a wider range of potential applications from extended optical fiber sensing networks, to simple plastic "stickers" for use around the home and office.
Leak Detector, Appliances, Sensitivity Optrode, Polymers, Production, Humidity, Oxygen, Detection, Chemistry, Indicator, 08 Hydrogen, Fuel Cell, Coatings, Waveguide, Fuel Cells, Safety, Deposition, Plastics, Optrode, Automobiles, Moisture, Optical Fibers, Hydrogen
Leak Detector, Appliances, Sensitivity Optrode, Polymers, Production, Humidity, Oxygen, Detection, Chemistry, Indicator, 08 Hydrogen, Fuel Cell, Coatings, Waveguide, Fuel Cells, Safety, Deposition, Plastics, Optrode, Automobiles, Moisture, Optical Fibers, Hydrogen
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