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相关概念视频

Raman Spectroscopy Instrumentation: Overview01:26

Raman Spectroscopy Instrumentation: Overview

532
A conventional Raman spectrophotometer includes a laser source, a sample holding system, a wavelength selector, and a detector.
The monochromatic laser source, typically using visible or near-infrared radiation, generates a highly focused beam of light. This light interacts with the molecules of the sample, scattering some of the light. Liquid and gaseous samples are usually tested in ordinary glass capillaries, while solids can be analyzed as powders packed in capillaries or as potassium...
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UV–Vis Spectrometers01:14

UV–Vis Spectrometers

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The absorbance of UV and visible (UV–visible) radiations is measured using a UV–visible spectrophotometer. Deuterium lamps, which emit UV radiation, and tungsten lamps, which produce radiation in the visible region, are used as light sources in UV–visible spectrophotometers. A monochromator or prism is used for diffraction grating, i.e., to split the incoming radiation into different wavelengths. A system of slits is used to focus the desired wavelength on the sample cell.
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Raman Spectroscopy: Overview01:20

Raman Spectroscopy: Overview

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The underlying principle of Raman spectroscopy is based on the interaction between light and matter, specifically molecules' inelastic scattering of photons. When a monochromatic beam of light, typically from a laser source, interacts with a sample, most scattered light has the same frequency as the incident light. This is known as Rayleigh scattering.
However, a small fraction of the scattered light exhibits a frequency shift due to the exchange of energy between the incident photons and...
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Ultraviolet and Visible (UV–Vis) Spectroscopy: Overview01:02

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Ultraviolet–visible (UV–visible or UV–Vis) spectroscopy is an analytical technique that investigates the interaction between matter and UV–Vis light within the electromagnetic spectrum. This method is widely used for its versatility, simplicity, and relatively quick data acquisition, making it valuable for both qualitative and quantitative analysis. When UV–Vis radiation passes through a material,  molecules absorb light depending on the energy required for...
3.1K

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使用深紫外线拉曼-LIBS自动聚焦型紧型化学光谱传感器检测混合物

Atchutananda Surampudi1, Anil Aryal2, Tilak Hewagama3

  • 1Charles L. Brown Department of Electrical and Computer Engineering, University of Virginia (UVA), Charlottesville, Virginia 22904, United States.

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概括

我们开发了一种紧的手持式化学传感器,将深紫外拉曼和激光诱导分解光谱 (LIBS) 结合起来,用于多功能现场分析. 这种轻量级的单激光系统可以在各种样品中检测混合物的高灵敏度.

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科学领域:

  • 分析化学 分析化学
  • 频谱学是一种光谱学.
  • 传感器技术 传感器技术

背景情况:

  • 传统的集成化学传感器通常需要多个激光波长,增加复杂性和批量.
  • 现场化学分析的手持设备对于现场应用非常理想,但在灵敏度和便携性方面存在局限性.

研究的目的:

  • 开发一个紧,轻量级和多功能化学传感器,集成深紫外拉曼和激光诱导分解光谱 (LIBS).
  • 为了证明传感器使用单个激光源和自动对焦机制来检测敏感混合物的能力.

主要方法:

  • 一个单一的266nm深紫外线激光源 (1.5ns脉冲,10mW) 用于3D打印的,手掌大小的单元 (38g).
  • 该系统集成了拉曼和LIBS模式,并配备了一种自动对焦机制,用于无的模式切换.
  • 整个系统,包括激光和光谱仪,重量不到500克.

主要成果:

  • 在复杂矿物质,同位素和有机-无机样本中,混合物检测率降至0.1%.
  • 深紫外激发增强了拉曼信号强度,减少了光干扰.
  • 紧的传感器实现了高灵敏度,此前需要重的强化CCD.

结论:

  • 单个激光,深紫外线传感器为现场化学分析提供了简化,便携和强大的解决方案.
  • 这项技术适用于移动应用,包括环境监测和行星探索.
  • 与现有的综合方法相比,该设计显著降低了光学复杂性和系统足迹.