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相关概念视频

Photoluminescence: Applications01:14

Photoluminescence: Applications

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Photoluminescence offers a wide range of applications due to its inherent sensitivity and selectivity. This technique allows for both direct and indirect analyses of the analyte. Direct quantitative analysis is possible when the analyte exhibits a favorable quantum yield for fluorescence or phosphorescence. However, an indirect analysis may be feasible if the analyte is not fluorescent or phosphorescent, or if the quantum yield is unfavorable. Indirect methods include reacting the analyte with...
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Photoluminescence: Fluorescence and Phosphorescence01:23

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Photoluminescence is a process where a molecule absorbs light energy and re-emits it in the form of light. This phenomenon occurs when a substance absorbs photons, promoting its electrons to higher energy level excited states, followed by a relaxation process in which the electrons return to their original ground state energy levels and emit light. Photoluminescence is widely observed in various materials, including semiconductors, and organic and inorganic compounds.
A pair of electrons in a...
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Fluorescence and Phosphorescence: Instrumentation01:25

Fluorescence and Phosphorescence: Instrumentation

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Fluorometers and spectrofluorometers are two types of instruments used for measuring molecular fluorescence. These instruments differ in how they select excitation and emission wavelengths and the type of light sources they utilize. Fluorometers use absorption interference filters to choose excitation and emission wavelengths. The excitation source in a fluorometer is typically a low-pressure mercury vapor lamp that emits intense lines distributed throughout the ultraviolet and visible regions.
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Flame Photometry: Overview01:02

Flame Photometry: Overview

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Flame photometry, also known as flame emission spectrometry, is a technique used for the qualitative and quantitative analysis of elements present in a sample using a flame as the source of excitation energy. The concept of flame photometry was realized in the early 1860s by Kirchhoff and Bunsen, who discovered that specific elements emit characteristic radiation when excited in flames. The first instrument developed for this purpose was used to measure sodium (Na) in plant ash using a Bunsen...
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High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings
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超越生物领域的发光温度计

Benjamin Harrington1, Ziyang Ye1, Laura Signor2

  • 1Materials Science Program, University of Rochester, Rochester, New York 14627, United States.

ACS nanoscience Au
|February 26, 2024
PubMed
概括

发光温度计,一种温度传感方法,正在超越生物学,扩展到微电子和催化等领域. 本综述涵盖了这些令人兴奋的非生物应用的技术,能力和挑战.

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科学领域:

  • 物理化学 物理化学
  • 材料科学 材料科学 材料科学
  • 分析化学 分析化学

背景情况:

  • 发光温度计是一种利用光辐射来测量温度的技术,已经出现了显著的增长.
  • 虽然由于生物相容性,它在生物学应用中具有历史性,但其范围正在扩大.
  • 新兴的非生物应用利用发光温度计进行精确的热分析.

研究的目的:

  • 审查非生物发光温度计的动机,方法和进展.
  • 突出测量能力和特定于非生物环境的挑战.
  • 在这个不断扩大的领域探索未来的研究方向.

主要方法:

  • 常见的发光温度测量探针和适用于非生物用途的技术的概述.
  • 讨论有关微电子,催化和等离子体应用的测量能力.
  • 在各种非生物应用类别中对现有结果和性能进行调查.

主要成果:

  • 发光温度计为非生物系统的热特性提供了独特的优势.
  • 具体的测量挑战和要求与生物应用有很大的不同.
  • 在微电子,催化和等离子体学方面成功实施.

结论:

  • 发光温度计的非生物应用正在迅速发展.
  • 需要进一步的研究来解决不同的测量挑战,并打开新的机遇.
  • 该领域显示出各种科学和工程学科的热分析创新的巨大潜力.