Room temperature operated hydrogen sensor using palladium coated on tapered optical fiber

材料科学 多模光纤 包层(金属加工) 光纤 氢传感器 扫描电子显微镜 光电子学 光学 化学 复合材料 生物化学 物理 有机化学 催化作用
作者
Mohammed Majeed Alkhabet,Saad Hayatu Girei,Husam Salih,Rasha Thabit,Mohammed Issa,Suriati Paiman,Norhana Arsad,Mohammed T. Alresheedi,Mohd Adzir Mahdi,Mohd Hanif Yaacob
出处
期刊:Materials Science And Engineering: B [Elsevier]
卷期号:287: 116092-116092 被引量:15
标识
DOI:10.1016/j.mseb.2022.116092
摘要

• H 2 sensor using tapered optical fiber coated with Palladium (Pd) NPs is proposed. • Absorbance decreases when tapered multimode fiber coated with Pd exposed to H 2 . • The selectivity of the fabricated sensor toward H 2 was affirmed with no response to other gases such as NH 3 and CH 4 . Gaseous pollutants such as hydrogen gas (H 2 ) are present in daily human activities and have been studied extensively due to their high explosive and widespread use in many fields. A common H 2 gas detector is electrically based. Although these electrical or conductometric sensors attain high sensitivity, they suffer from drawbacks, including poor selectivity, high operating temperature, and susceptibility to electromagnetic interference, which the optical-based sensor can improve. This study describes the development of a palladium-coated (Pd) optical fiber for the room temperature (H 2 ) hydrogen application process. To improve the evanescent light field that propagates through the fiber, a multimode fiber was used to fabricate a transducing channel with cladding and core diameters of 125 μm and 62.5 μm respectively. The multimode optical fibers were tapered from 125 μm cladding diameters to 20 μm diameter, 10 mm waist-length, 5 mm to the up and down tapered region, and coated with Pd by using the drop-casting technique. Various characterization techniques have been used to characterize palladium, such as Field Emission Scanning Electron Microscopy (FESEM), X-ray energy scattering (EDX), X-ray Diffraction (XRD), and atomic force microscopy (AFM). The fabricated Pd-based sensor operates safely at room temperature with a gas concentration of 0.125 % to 2.00 % H 2 . The measured sensitivity, response, and recovery time were 18,645 %, 50 s, and 230 s, respectively. The selectivity of the fabricated sensor toward H 2 was affirmed with no response to other gases such as ammonia (NH 3 ) and methane (CH 4 ). However, this study demonstrates reliable, efficient, and reproducible H 2 detection using a simple and cost-effective method.
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