论文标题
基于纤维Fabry-perot腔的光谱气体传感器
A fiber Fabry-Perot cavity based spectroscopic gas sensor
论文作者
论文摘要
光谱传感器是分析工业和科学应用中气体混合物的强大工具。尽管高度敏感的光谱仪往往具有较大的足迹,但微型光学设备通常缺乏灵敏度或宽带光谱覆盖率。通过采用广泛可调的,被动稳定的纤维Fabry-Perot腔(FFPC),我们展示了一种吸收光谱装置,该设备连续进行了几十台Terahertz的样品。两项宽带扫描都使用空腔模式宽度光谱范围来识别分析物的光谱指纹,并且用于单个吸收特征的快速,低噪声扫描方法可确定氧气A频段的浓度。新颖的扫描方法在磅 - 二钻机中使用注入的调制信号,并进行锁定测量,以拒绝其他频率的噪声。基于FFPC的方法提供了直接纤维耦合的,极其微型,轻巧且健壮的平台,用于分析小型分析物量,可以直接扩展到在不同的波长范围,液体分析物和其他光谱技术下仅进行设备平台的调整,而在不同的波长范围,液体分析物和其他光谱技术上进行感应。
Optical spectroscopic sensors are powerful tools for analysing gas mixtures in industrial and scientific applications. Whilst highly sensitive spectrometers tend to have a large footprint, miniaturized optical devices usually lack sensitivity or wideband spectroscopic coverage. By employing a widely tunable, passively stable fiber Fabry-Perot cavity (FFPC), we demonstrate an absorption spectroscopic device that continuously samples over several tens of terahertz. Both broadband scans using cavity mode width spectroscopy to identify the spectral fingerprints of analytes and a fast, low-noise scan method for single absorption features to determine concentrations are exemplary demonstrated for the oxygen A-band. The novel scan method uses an injected modulation signal in a Pound-Drever-Hall feedback loop together with a lock-in measurement to reject noise at other frequencies. The FFPC-based approach provides a directly fiber coupled, extremely miniaturized, light-weight and robust platform for analyzing small analyte volumes that can straightforwardly be extended to sensing at different wavelength ranges, liquid analytes and other spectroscopic techniques with only little adjustments of the device platform.