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May 1, 202610 citations

Harnessing rare earth coordination chemistry for advanced photofunctional materials: from fundamental principles to emerging technologies.

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SFSong Fu-jiaPSPingru SuXLXue Li

Key Points

  • The aim is to explore the advancements in rare earth coordination chemistry for developing photofunctional materials.
  • Systematic analysis of rare earth coordination materials and design principles.
  • Review of controllable synthesis strategies and their applications.
  • Evaluation of structure-activity relationships across various categories.
  • Identified key applications in optoelectronics, anti-counterfeiting, and biomedical imaging.
  • Highlighted challenges and future directions for commercialization of RE photonic materials.
  • Demonstrated the importance of integrating 'antenna effect' with RE ion properties.

Abstract

Rare earth (RE) ions, characterized by unique 4f electronic configurations and shielded f-f transitions, serve as exceptional optical centers exhibiting narrow-band emission, long-lived luminescence, and rich energy-level structures. The construction of high-performance RE coordination-based photofunctional materials critically relies on the synergistic integration of the "antenna effect", provided by meticulously designed organic ligands, and the distinctive excited-state properties of RE ions. This molecular engineering approach not only maximizes the intrinsic photophysical advantages of RE elements, but also enables the precise tailoring of materials for diverse cutting-edge applications. This review provides a systematic and comprehensive analysis of RE coordination-based photofunctional materials, spanning from fundamental design principles and controllable synthesis strategies to emerging applications. We delve into the structure-activity relationships across various categories, including molecular complexes, supramolecular assemblies, coordination polymers, metal-organic frameworks (MOFs), and RE-covalent-bonded organic frameworks (RE-COFs). Furthermore, we highlight their transformative roles in optoelectronics, advanced anti-counterfeiting, biomedical imaging/therapy, radiation detection (scintillators) and photochemical catalysis. Finally, we outline current challenges and future perspectives, aiming to inspire interdisciplinary innovation and accelerate the commercialization of next-generation RE molecular photonic materials.

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Cite This Study

Fu-jia et al. (2026) studied this question.

synapsesocial.com/papers/69f442d4967e944ac55663aehttps://doi.org/10.1039/d5cs00384a
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