论文标题
纤维化学感应的分析和实验处理:evanescent波光谱法的结果
An Analytic and Experimental Treatment of Fiber Optic Chemical Sensing: Results on Evanescent Wave Spectrometry
论文作者
论文摘要
对于积极监测住宅,商业和工业空间,对化学物质和有毒化合物的僵化化学感应是非常理想的。有毒工业化合物(TICS),化学战剂(CWAS)和环境污染物(EPS)等分析物可能对平民,战士和环境构成严重威胁。我们报告了高度敏感,稳健和廉价的分布式僵持纤维化学传感器(FOCSS)。通过分析物达到感应区域并诱导其光学特性的变化来激活焦点。光谱响应的信息是通过逃生波探测的透射光谱的变化来传递的,与分析物的检测相对应。但是,有许多因素在此类纤维传感器的实施和优化中起作用。我们发现构建一般验光波导传感器的理论以指导分析是有益的。我们将其应用于特定的纤维柏拉图,该纤维柏拉图具有强大的,宽带,多目标,可扩展性,可扩展且与Texitle纤维和织物兼容 - 这项工作的重点。暴露于氨(NH $ _3 $)的焦点的预测和测量光谱之间的良好一致性为分析提供了支持。该实验产生了1ppm的灵敏度,代表了类最佳的当前。在测试中使用NH $ _3 $是一组较大的基于胺基的TIC,CWA,EPS和其他化学物种的代表,该物种针对广阔的区域分布覆盖范围和与纺织品兼容的传感器。
Standoff chemical sensing of chemicals and toxic compounds is very desirable for actively monitoring residential, commercial, and industrial spaces. Analytes such as toxic industrial compounds (TICs), chemical warfare agents (CWAs), and environmental pollutants (EPs) can pose serious threats to civilians, warfighters, and the environment. We report on highly sensitive, robust, and inexpensive distributed standoff fiber optic chemical sensors (FOCSs). FOCSs are activated by analytes reaching a sensing region and inducing a change in its optical properties. The information of a spectral response is transmitted by a shift in transmission spectra probed by evanescent waves, corresponding to the detection of an analyte. However, there are many factors that play a role in the implementation and optimization of such fiber sensors. We find it beneficial to construct the theory of general optochemical waveguide sensors to guide the analysis. We apply it to a specific fiber platfom that is robust, broadband, multi-target, scalable, and compatible to texitle fibers and fabrics - a focus of this work. The good agreement between the predicted and measured spectra of FOCSs exposed to Ammonia (NH$_3$) lends support to the analysis. The experiment yields a 1ppm sensitivity, representing the current best in class. The use of NH$_3$ in the test serves as a representative for a larger set of amine-based TICs, CWAs, EPs, and other chemical species, targeted for wide-area distributed coverage and textile-compatible sensors.