4.8 Article

Discrete Frequency Infrared Microspectroscopy and Imaging with a Tunable Quantum Cascade Laser

期刊

ANALYTICAL CHEMISTRY
卷 84, 期 23, 页码 10366-10372

出版社

AMER CHEMICAL SOC
DOI: 10.1021/ac302513f

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资金

  1. National Science Foundation [CHE 0957849]
  2. National Institutes of Health [R01EB009745]
  3. Congressionally Directed Medical Research Program Postdoctoral Fellowship [BC101112]

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Fourier-transform infrared (FT-IR) imaging 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.

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