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Discrete frequency infrared microspectroscopy and imaging with a tunable quantum cascade laser

机译:离散频率红外显微和成像用的可调谐量子级联激光器

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摘要

Fourier-transform infrared imaging (FT-IR) is a well-established modality but requires the acquisition of a spectrum over a large bandwidth, even in cases where only a few spectral features may be of interest. Discrete frequency infrared (DF-IR) methods are now emerging in which a small number of measurements may provide all the analytical information needed. The DF-IR approach is enabled by the development of new sources integrating frequency selection, in particular of tunable, narrow-bandwidth sources with enough power at each wavelength to successfully make absorption measurements. Here, we describe a DF-IR imaging microscope that uses an external cavity quantum cascade laser (QCL) as a source. We present two configurations, one with an uncooled bolometer as a detector and another with a liquid nitrogen cooled Mercury Cadmium Telluride (MCT) detector and compare their performance to a commercial FT-IR imaging instrument. We examine the consequences of the coherent properties of the beam with respect to imaging and compare these observations to simulations. Additionally, we demonstrate that the use of a tunable laser source represents a distinct advantage over broadband sources when using a small aperture (narrower than the wavelength of light) to perform high-quality point mapping. The two advances highlight the potential application areas for these emerging sources in IR microscopy and imaging.
机译:傅里叶变换红外成像(FT-IR)是一种行之有效的方式,但是即使在可能只需要几个光谱特征的情况下,也需要在大带宽上采集光谱。现在正在出现离散频率红外(DF-IR)方法,其中少量测量可以提供所需的所有分析信息。 DF-IR方法是通过开发集成频率选择的新信号源而实现的,尤其是在每个波长具有足够功率以成功进行吸收测量的可调窄带宽信号源。在这里,我们描述了使用外腔量子级联激光器(QCL)作为源的DF-IR成像显微镜。我们介绍了两种配置,一种配置为使用非冷却测辐射热计作为检测器,另一种配置为使用液氮冷却的碲化汞镉(MCT)检测器,并将其性能与商用FT-IR成像仪器进行比较。我们检查了光束相干特性对成像的影响,并将这些观察结果与模拟进行了比较。此外,我们证明了在使用小孔径(比光的波长窄)执行高质量点映射时,使用可调激光源比宽带光源具有明显的优势。两项进展突显了这些新兴来源在红外显微镜和成像领域的潜在应用领域。

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