Department of Physics, Umeå University, 901 87, Umeå, Sweden.
Phys Chem Chem Phys. 2018 Nov 14;20(44):27849-27855. doi: 10.1039/c8cp05666h.
We report the first photoacoustic detection scheme using an optical frequency comb-optical frequency comb photoacoustic spectroscopy (OFC-PAS). OFC-PAS combines the broad spectral coverage and the high resolution of OFCs with the small sample volume of cantilever-enhanced PA detection. In OFC-PAS, a Fourier transform spectrometer (FTS) is used to modulate the intensity of the exciting comb source at a frequency determined by its scanning speed. One of the FTS outputs is directed to the PA cell and the other is measured simultaneously with a photodiode and used to normalize the PA signal. The cantilever-enhanced PA detector operates in a non-resonant mode, enabling detection of a broadband frequency response. The broadband and the high-resolution capabilities of OFC-PAS are demonstrated by measuring the rovibrational spectra of the fundamental C-H stretch band of CH4, with no instrumental line shape distortions, at total pressures of 1000 mbar, 650 mbar, and 400 mbar. In this first demonstration, a spectral resolution two orders of magnitude better than previously reported with broadband PAS is obtained, limited by the pressure broadening. A limit of detection of 0.8 ppm of methane in N2 is accomplished in a single interferogram measurement (200 s measurement time, 1000 MHz spectral resolution, 1000 mbar total pressure) for an exciting power spectral density of 42 μW/cm-1. A normalized noise equivalent absorption of 8 × 10-10 W cm-1 Hz-1/2 is obtained, which is only a factor of three higher than the best reported with PAS based on continuous wave lasers. A wide dynamic range of up to four orders of magnitude and a very good linearity (limited by the Beer-Lambert law) over two orders of magnitude are realized. OFC-PAS extends the capability of optical sensors for multispecies trace gas analysis in small sample volumes with high resolution and selectivity.
我们报告了首个使用光频梳-光频梳光声光谱(OFC-PAS)的光声检测方案。OFC-PAS 结合了光频梳的宽光谱覆盖和高分辨率以及悬臂增强光声检测的小样品体积。在 OFC-PAS 中,傅里叶变换光谱仪(FTS)用于调制激发梳状源的强度,其频率由其扫描速度决定。FTS 的一个输出指向光声池,另一个输出同时用光电二极管测量,并用于归一化光声信号。悬臂增强光声探测器以非共振模式运行,能够检测宽带频率响应。通过测量 CH4 的基本 C-H 伸缩带的转动振动光谱,证明了 OFC-PAS 的宽带和高分辨率能力,总压力为 1000 mbar、650 mbar 和 400 mbar,没有仪器线形状失真。在这个首次演示中,获得了比以前用宽带 PAS 报道的好两个数量级的光谱分辨率,该分辨率受到压力展宽的限制。在单次干涉图测量(200 s 测量时间、1000 MHz 光谱分辨率、1000 mbar 总压力)中,在 42 μW/cm-1 的激发功率谱密度下,甲烷的检测限达到 0.8 ppm,归一化噪声等效吸收为 8×10-10 W cm-1 Hz-1/2,仅比基于连续波激光的 PAS 报道的最佳值高 3 倍。实现了高达四个数量级的宽动态范围和两个数量级的非常好的线性度(受 Beer-Lambert 定律限制)。OFC-PAS 扩展了光学传感器在小样品体积中进行多物种痕量气体分析的能力,具有高分辨率和选择性。