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Low-energy Cathodoluminescence for (Oxy)Nitride Phosphors
Published on: November 15, 2016
Progress on lanthanide-based organic-inorganic hybrid phosphors
Luís D Carlos1, Rute A S Ferreira, Verónica de Zea Bermudez
1Department of Physics, CICECO, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal. lcarlos@ua.pt
Chemical Society Reviews
|December 25, 2010
Summary
Advanced organic-inorganic hybrid materials with trivalent lanthanide ions (Ln(3+)) are revolutionizing technology. These eco-friendly materials offer versatile, multifunctional applications in optics, energy, and biomedicine.
Area of Science:
- Materials Science
- Chemistry
- Photonics
Background:
- Organic-inorganic hybrid materials are gaining traction due to their unique properties.
- Trivalent lanthanide ions (Ln(3+)) impart desirable characteristics for advanced applications.
- Recent research focuses on developing eco-friendly and multifunctional hybrid systems.
Purpose of the Study:
- To provide an overview of recent advancements in Ln(3+)-based organic-inorganic hybrid materials.
- To highlight the innovation and potential of these materials across diverse technological fields.
- To serve as a tutorial for researchers entering this active field.
Main Methods:
- This review synthesizes recent findings from various research groups.
- It focuses on the design and synthesis of novel Ln(3+)-based hybrid materials.
- The review covers a broad spectrum of applications, drawing from published literature.
Main Results:
- A wide array of advanced Ln(3+)-based organic-inorganic hybrid materials have been synthesized.
- These materials demonstrate significant potential in phosphors, lighting, and optical telecommunications.
- Emerging applications are noted in solar cells and biomedicine.
Conclusions:
- Ln(3+)-based organic-inorganic hybrid materials represent a major innovation in materials science.
- Their versatility and multifunctionality make them suitable for cutting-edge technological applications.
- Continued research promises further breakthroughs in optics, energy, and healthcare.
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