Rapid and Sensitive Ethanol Detection Using Ag-Functionalized ZnO Nanorods-Clad Optic Fiber Sensor for Dual-Spectral Region Operation

材料科学 纳米棒 光纤传感器 异丙醇 光纤 光电子学 选择性 乙醇 纳米颗粒 化学工程 纳米技术 微晶 各向同性腐蚀 热液循环 甲醇 丙酮 化学传感器 蚀刻(微加工) 包层(金属加工) 电化学气体传感器 化学气相沉积 分析化学(期刊) 二氧化碳传感器 金属 聚二甲基硅氧烷 乙醇燃料 挥发性有机化合物 金属有机骨架 微型加热器
作者
S. Narasimman,A. Prasanth,Zachariah C. Alex
出处
期刊:IEEE Sensors Journal [IEEE Sensors Council]
卷期号:25 (20): 38000-38009
标识
DOI:10.1109/jsen.2025.3608183
摘要

Nowadays, ethanol detection has garnered significant interest from researchers as valuable tool for monitoring breath test in drunken driving, checking the safety of food packaging, controlling fermentation processes and detecting leaks from chemical plants. As a result, it is highly important to build a sensor that detects ethanol quickly and has improved sensor properties. Thus, herein a fiber optic ethanol sensor utilizing Ag functionalized ZnO nanorods was fabricated and characterized to enhance ethanol sensing performance. ZnO nanorods were prepared by hydrothermal route and functionalized ZnO surface with metal Ag nanoparticles via chemical reduction method. Numerous characterizations were performed to investigate material properties of the synthesized nanorods. The XRD plot confirmed the hexagonal wurzite crystallite structure of ZnO and three additional peaks of metal Ag appeared at 38.50 °, 44.70 ° and 64.89 ° might be matched to the (1 1 1), (2 0 0) and (2 2 0) planes respectively. The fiber optic sensor head was fabricated by modification of original cladding through chemical etching and dip coated using Ag functionalized ZnO nanorods. Subsequently, the sensor head was exposed to test VOCs including ethanol, isopropyl alcohol (IPA), acetone and methanol (0-500 ppm) to investigate the gas sensor response behavior of pristine and Ag functionalized ZnO nanorods at room temperature. Noticeably, Ag functionalized ZnO based gas sensor possesses higher selectivity towards ethanol along with enhanced sensor response (S.R.) ~33.6% at 693 nm and ~34.7% at 772 nm. The sensor shown better linearity (R2=0.97) towards ethanol over 0-500 ppm dynamic concentration range, faster response/recovery time of 12 s/20 s, LOD of 53 ppm, better repeatability and stability. The proposed enhanced ethanol sensing mechanism is thoroughly detailed. The exemplary sensor results demonstrated the possibility of Ag-functionalized ZnO as the potential nanomaterial for ethanol sensor fabrication, capable of operating effectively in both the visible and NIR regions.
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