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Infrared Spectroscopy: New Frontiers Both Near and Far

机译:红外光谱:靠近和远的新边界

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摘要

Until very recently, the conventional optical resolution limits for far-field infrared (IR) imaging were ~5-10 μm, given the 2-25 μm wavelengths and the typical optics of mid-IR microscopes. In 2011, the diffraction limit for far-field IR was achieved with synchrotron source light, high numerical aperture (NA) optics, and a focal plane array detector. Comparable capability for thermal-source IR microscopes is now commercially available. Single-wavelength scanning, with quantum cascade lasers, and fast, full spectrum imaging, with focal plane array detectors, permit collection of infrared images on samples with dimensions on the order of centimeters, within minutes. Near-field IR techniques embody a conceptual paradigm shift, preserving the analytical power of IR spectroscopy, while breaking the diffraction limit constraints for a 100-fold improvement in spatial resolution. Exploration of the chemistry of materials at micrometer and nanometer scales leads to a better macroscopic perspective, as illustrated here with examples from our ongoing research in materials, environmental, and biomedical applications.
机译:直到最近,对于远场红外线(IR)成像的传统光学分辨率限制为〜5-10μm,给出了2-25μm波长和中红外显微镜的典型光学器件。 2011年,使用同步源光,高数孔径(NA)光学器件和焦平面阵列检测器来实现远场IR的衍射极限。热源IR显微镜的可比能力现在可商购。单波长扫描,具有Quantum级联激光器,快速,全光谱成像,焦点平面阵列探测器,允许在几分钟内厘米的尺寸上的样品上的红外图像。近场IR技术体现了概念范式转变,保留IR光谱的分析功率,同时破坏衍射限制约束,在空间分辨率下提高100倍。 MICROMES和纳米尺度的材料化学的探索导致更好的宏观视角,如同来自我们正在进行的材料,环境和生物医学应用的持续研究的实例。

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