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首页> 外文期刊>Applied Spectroscopy Reviews: An International Journal of Principles, Methods, and Applications >Sensitivity Advantage of QCL Tunable-Laser Mid-Infrared Spectroscopy Over FTIR Spectroscopy
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Sensitivity Advantage of QCL Tunable-Laser Mid-Infrared Spectroscopy Over FTIR Spectroscopy

机译:QCL可调激光中红外光谱仪相对于FTIR光谱仪的灵敏度优势

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Interest in mid-infrared spectroscopy instrumentation beyond classical FTIR using a thermal light source has increased dramatically in recent years. Synchrotron, supercontinuum, and external-cavity quantum cascade laser light sources are emerging as viable alternatives to the traditional thermal black-body emitter (Globar), especially for remote interrogation of samples ("stand-off" detection) and for hyperspectral imaging at diffraction-limited spatial resolution ("microspectroscopy"). It is thus timely to rigorously consider the relative merits of these different light sources for such applications. We study the theoretical maximum achievable signal-to-noise ratio (SNR) of FTIR using synchrotron or supercontinuum light vs. that of a tunable quantum cascade laser, by reinterpreting an important result that is well known in near-infrared optical coherence tomography imaging. We rigorously show that mid-infrared spectra can be acquired up to 1000 times faster-using the same detected light intensity, the same detector noise level, and without loss of SNR-using the tunable quantum cascade laser as compared with the FTIR approach using synchrotron or supercontinuum light. We experimentally demonstrate the effect using a novel, rapidly tunable quantum cascade laser that acquires spectra at rates of up to 400 per second. We also estimate the maximum potential spectral acquisition rate of our prototype system to be 100,000 per second.
机译:近年来,除了使用热光源的经典FTIR以外,对中红外光谱仪的兴趣也大大增加。同步加速器,超连续谱和外腔量子级联激光光源正在成为传统的热黑体发射器(Globar)的可行替代品,特别是用于样品的远程询问(“远距”检测)和衍射时的高光谱成像有限的空间分辨率(“显微光谱”)。因此,对于此类应用,应严格考虑这些不同光源的相对优点。我们通过重新解释近红外光学相干断层扫描成像中众所周知的重要结果,研究了使用同步加速器或超连续谱光与可调谐量子级联激光器的FTIR的理论最大可实现信噪比(SNR)。我们严格地表明,与使用同步加速器的FTIR方法相比,使用可调量子级联激光器,使用相同的检测光强度,相同的检测器噪声水平且不损失SNR的情况下,中红外光谱的采集速度最高可提高1000倍。或超连续光。我们通过实验证明了使用新型,快速可调的量子级联激光器的效果,该激光器以高达每秒400的速率获取光谱。我们还估计原型系统的最大潜在频谱采集速率为每秒100,000。

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