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Related Concept Videos

Photoluminescence: Applications01:14

Photoluminescence: Applications

379
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...
379
Fluorescence and Phosphorescence: Instrumentation01:25

Fluorescence and Phosphorescence: Instrumentation

544
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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Photoluminescence: Fluorescence and Phosphorescence01:23

Photoluminescence: Fluorescence and Phosphorescence

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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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Variables Affecting Phosphorescence and Fluorescence01:26

Variables Affecting Phosphorescence and Fluorescence

489
Fluorescence and phosphorescence are essential phenomena in fields like analytical chemistry, biological imaging, and materials science, where they detect molecular properties and visualize cellular structures. Understanding the variables that influence these luminescent behaviors is crucial for maximizing accuracy and efficiency in their applications. These variables can broadly be grouped into chemical structure, solvent properties, and external conditions, each playing a distinct role in...
489

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Updated: Jun 7, 2025

Low-energy Cathodoluminescence for OxyNitride Phosphors
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Exploring new useful phosphors by combining experiments with machine learning.

Takashi Takeda1, Yukinori Koyama2, Hidekazu Ikeno3

  • 1Research Center for Electronic and Optical Materials, National Institute for Materials Science (NIMS), Tsukuba, Japan.

Science and Technology of Advanced Materials
|November 11, 2024
PubMed
Summary

Developing new phosphors for lighting and displays is accelerated by combining computational science with machine learning. This approach speeds up the discovery of novel phosphor materials with desired luminescent properties.

Keywords:
Phosphoreuropiumhigh-throughput experimentlocal structuremachine learning

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Area of Science:

  • Materials Science
  • Solid-State Physics
  • Computational Chemistry

Background:

  • Advances in solid-state lighting and displays necessitate the continuous development of new phosphors.
  • Traditional methods for discovering new phosphors rely on time-consuming trial-and-error experiments.
  • Computational approaches can significantly accelerate the identification of promising phosphor candidates.

Purpose of the Study:

  • To explore a more practical and efficient approach for developing novel phosphors with targeted luminescent properties.
  • To investigate the integration of computational science and machine learning in phosphor discovery.
  • To identify new phosphor compositions and crystal structures with desirable optical characteristics.

Main Methods:

  • Combining experimental investigations with machine learning algorithms.
  • Focusing on key luminescent properties: emission wavelength, full width at half maximum (FWHM), and thermal quenching.
  • Utilizing high-throughput experimentation for rapid screening of potential candidates.
  • Exploring new chemical compositions and crystal structures for phosphor hosts.

Main Results:

  • Machine learning models can predict phosphor properties, reducing experimental time.
  • Integration of computational and experimental methods enables faster discovery of novel phosphors.
  • Identification of potential new phosphor candidates with tailored emission characteristics.

Conclusions:

  • Combining computational science and machine learning offers a significantly faster route to developing new phosphors.
  • This integrated approach can lead to the discovery of unexpected and overlooked phosphor compositions.
  • The methodology holds promise for advancing solid-state lighting and display technologies.