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相关概念视频

IR Spectrometers01:25

IR Spectrometers

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There are two main infrared (IR) spectrophotometers: dispersive IR spectrometers and Fourier transform infrared (FTIR) spectrometers. In a dispersive IR spectrometer, a beam of infrared radiation produced by a hot wire is divided into two parallel equal-intensity beams using mirrors. One beam passes through the sample, while another is a reference beam. The beams then move through the monochromator, which separates the radiations into a continuous spectrum of different frequencies. The...
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Infrared (IR) Spectroscopy: Overview01:09

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When electromagnetic radiation passes through a material, atoms or molecules transition from a lower to a higher energy state by absorbing radiation corresponding to the energy difference between the two states. The absorption of infrared (IR) radiation causes transitions between vibrational energy levels in a molecule. Therefore, IR spectroscopy is a useful analytical tool for determining the molecular structure of molecules.
Different compounds display unique properties due to their...
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IR Frequency Region: Fingerprint Region01:03

IR Frequency Region: Fingerprint Region

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IR spectra are divided into two main regions: the diagnostic region and the fingerprint region. The diagnostic region of the spectrum lies above 1500 cm−1. The absorptions resulting from single-bond vibrations of the N–H, C–H, and O–H stretch at higher wavenumbers and appear on the left side of the spectrum. The stretching absorptions of the C≡C and C≡N occur between 2100–2300 cm−1. In contrast, those arising from stretching absorptions of the...
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IR Spectrum01:19

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When infrared (IR) radiation passes through a molecule, the bonds stretch or bend by absorbing the radiation. This absorption creates the molecule's absorption spectrum, which is the plot of its percentage transmittance versus wavenumber.
Transmittance is defined as the ratio of the radiant power passing through a sample to that from the radiation's source. Multiplying the transmittance by 100 gives the percent transmittance (%T), which varies between 100% (no absorption) and 0%...
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Applications of IR Spectroscopy: Overview01:11

Applications of IR Spectroscopy: Overview

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The non-destructive nature and ability to provide valuable chemical information make IR spectroscopy a versatile technique with broad applications in various scientific and industrial fields. IR spectroscopy is commonly used to identify and characterize organic and inorganic compounds. It provides information about the functional groups present in a molecule and the bonding between atoms. This helps in the structural elucidation of compounds during organic synthesis, pharmaceutical research,...
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Imaging Biological Samples with Optical Microscopy01:18

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Optical microscopy uses optic principles to provide detailed images of samples. Antonie van Leeuwenhoek designed the first compound optical microscope in the 17th century to visualize blood cells, bacteria, and yeast cells. In 1830, Joseph Jackson Lister created an essentially modern light microscope. The 20th century saw the development of microscopes with enhanced magnification and resolution.
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High-definition Fourier Transform Infrared FT-IR Spectroscopic Imaging of Human Tissue Sections towards Improving Pathology
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宽带里埃转换光学光热红外光谱和成像

Aleksandr Razumtcev1,2, Gwendylan A Turner1,2,3, Sergey Zayats4

  • 1Advanced Light Source Division, Lawrence Berkeley National Laboratory, Berkeley, California 94720, United States.

Analytical chemistry
|September 11, 2025
PubMed
概括

这项研究引入了一种新的光学光热红外 (O-PTIR) 显微镜技术. 它将同步红外辐射与O-PTIR相结合,用于在广泛的光谱范围内进行高分辨率化学成像,改进了现有方法.

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科学领域:

  • 频谱学是一种光谱学.
  • 显微镜的使用方法
  • 化学成像技术 化学成像技术

背景情况:

  • 红外 (IR) 光谱绘制化学异质性的地图,但其衍射受限.
  • 同步红外光源提供高亮度和宽带宽.
  • 对于先进的研究,需要微米以下的空间分辨率.

研究的目的:

  • 为了扩大光热红外测量的光谱范围.
  • 开发一种基于同步仪组合的O-PTIR模式.
  • 在中红外范围实现高空间分辨率的化学成像.

主要方法:

  • 在光学光热IR (O-PTIR) 显微镜中集成了一个同步子IR源.
  • 采用调制的红外和可见探针激光束进行检测.
  • 在光学和光检测模式中使用了步骤扫描干扰仪.

主要成果:

  • 展示了高空间分辨率的化学成像,涵盖了中等红外范围 (541-4000 cm-1).
  • 与商业激光源相比,实现了更好的光谱范围.
  • 与同步离子显微光谱学相比,展示了更好的空间分辨率.

结论:

  • 基于同步光子的O-PTIR可实现高空间分辨率的远场化学成像.
  • 该技术成功地在小鼠大脑组织部分中分化了细胞.
  • 这种模式克服了微微化学分化的红外衍射极限.