基于无芯多模光纤微结构的光片偏斜射线传感平台

IF 5.4 Q1 CHEMISTRY, ANALYTICAL Sensing and Bio-Sensing Research Pub Date : 2024-05-23 DOI:10.1016/j.sbsr.2024.100656
Lukui Xu , Tingting Zhuang , Bonan Liu , Jinyu Wang , Mamoona Khalid , Soroush Shahnia , Christophe A. Codemard , Zhiyong Bai , Shen Liu , Ying Wang , George Y. Chen , Yiping Wang
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引用次数: 0

摘要

鉴于食品行业对质量保证的要求越来越高,将食品传感器以昂贵的形式集成到包装中成为一项重大挑战。这种集成对于加强食品安全措施和确保食品无懈可击的质量至关重要。官方实验室食品安全检测严重依赖于昂贵而笨重的设备。本文介绍了一种新的化学传感平台,并对内部构建的新型设计进行了比较研究,该设计采用高灵敏度光片偏斜射线探测坚固耐用的多模化学传感器头,以解决成本和占地面积问题。传感机制是通过结构化无芯多模光纤传播的精制偏斜光线介导的蒸发场与外部化学物质之间的相互作用,从而导致探针光的吸收。利用光片和四种专门设计的无芯多模光纤结构(包括均匀、锥形、微管和微气泡设计)对偏斜光线进行受控激发,从而提高了灵敏度。结果表明,微泡结构的灵敏度高达 0.046 (dB/cm) / dB(1 ng/ml),检测限低至 1.028 ng/ml。我们的研究成果为开发适用于食品安全监控的新型化学传感器奠定了基础。
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Light-sheet skew rays sensing platform based on microstructuring of coreless multimode fiber

Given the increasing demands for quality assurance in the food industry, a significant challenge emerges in the form of expensive integration of food sensors into packaging. This integration is crucial for strengthening food safety measures and ensuring the impeccable quality of food products. Official laboratory food safety testing heavily relies on expensive and bulky equipment. This article presents a new chemical sensing platform and a comparative study of in-house built novel designs for a robust multimode chemical sensor head probed by highly sensitive light-sheet skew rays for addressing cost and footprint issues. The sensing mechanism is the interaction between evanescent field mediated by refined skew rays propagating through a structured coreless multimode fiber and external chemicals, resulting in probe light absorption. The sensitivity is enhanced by the controlled excitation of skew rays using a light sheet and four specially engineered coreless multimode fiber structure, including uniform, tapered, microstub and microbubble designs. The sensitivity was demonstrated to be as high as 0.046 (dB/cm) / dB(1 ng/ml) and the limit of detection as low as 1.028 ng/ml for the microbubble structure. The results of our research pave the groundwork for a new range of chemical sensors suitable for food safety monitoring.

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来源期刊
Sensing and Bio-Sensing Research
Sensing and Bio-Sensing Research Engineering-Electrical and Electronic Engineering
CiteScore
10.70
自引率
3.80%
发文量
68
审稿时长
87 days
期刊介绍: Sensing and Bio-Sensing Research is an open access journal dedicated to the research, design, development, and application of bio-sensing and sensing technologies. The editors will accept research papers, reviews, field trials, and validation studies that are of significant relevance. These submissions should describe new concepts, enhance understanding of the field, or offer insights into the practical application, manufacturing, and commercialization of bio-sensing and sensing technologies. The journal covers a wide range of topics, including sensing principles and mechanisms, new materials development for transducers and recognition components, fabrication technology, and various types of sensors such as optical, electrochemical, mass-sensitive, gas, biosensors, and more. It also includes environmental, process control, and biomedical applications, signal processing, chemometrics, optoelectronic, mechanical, thermal, and magnetic sensors, as well as interface electronics. Additionally, it covers sensor systems and applications, µTAS (Micro Total Analysis Systems), development of solid-state devices for transducing physical signals, and analytical devices incorporating biological materials.
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