Kranendonk Laura A, An Xinliang, Caswell Andrew W, Herold Randy E, Sanders Scott T, Huber Robert, Fujimoto James G, Okura Yasuhiro, Urata Yasuhiro
Opt Express. 2007 Nov 12;15(23):15115-28. doi: 10.1364/oe.15.015115.
We present a novel method for low noise, high-speed, real-time spectroscopy to monitor molecular absorption spectra. The system is based on a rapidly swept, narrowband CW Fourier-domain mode-locked (FDML) laser source for spectral encoding in time and an optically time-multiplexed split-pulse data acquisition system for improved noise performance and sensitivity. An acquisition speed of 100 kHz, a spectral resolution better than 0.1 nm over a wavelength range of ~1335-1373 nm and a relative noise level of ~5 mOD (1% minimum detectable base-e absorbance) are achieved. The system is applied for crank-angle-resolved gas thermometry by H(2)O absorption spectroscopy in an engine motoring at 600 and 900 rpm with a precision of ~1%. Influences of various noise sources such as laser phase and intensity noise, trigger and synchronization jitter in the electronic detection system, and the accuracy of available H(2)O absorption databases are discussed.
我们提出了一种用于低噪声、高速、实时光谱学以监测分子吸收光谱的新方法。该系统基于一个快速扫描的窄带连续波傅里叶域锁模(FDML)激光源用于时间上的光谱编码,以及一个光学时分复用分脉冲数据采集系统用于改善噪声性能和灵敏度。实现了约100 kHz的采集速度、在约1335 - 1373 nm波长范围内优于0.1 nm的光谱分辨率和约5 mOD(约1%最小可检测自然对数吸光度)的相对噪声水平。该系统通过在600和900 rpm运转的发动机中利用H₂O吸收光谱法进行曲柄角分辨气体测温,精度约为1%。讨论了各种噪声源的影响,如激光相位和强度噪声、电子检测系统中的触发和同步抖动,以及可用的H₂O吸收数据库的准确性。