4.8 Review

Thermally Activated Delayed Fluorescence Material: An Emerging Class of Metal-Free Luminophores for Biomedical Applications

期刊

ADVANCED SCIENCE
卷 8, 期 24, 页码 -

出版社

WILEY
DOI: 10.1002/advs.202102970

关键词

biosensing; metal-free luminescent materials; photodynamic therapy (PDT); time-resolved luminescence imaging (TRLI); thermally activated delayed fluorescence (TADF)

资金

  1. National Natural Science Foundation of China [32001010]
  2. Beijing Natural Science Foundation [2214078]
  3. Beijing Institute of Technology Science and Technology Innovation Plan Project [2021CX11010]
  4. Beijing Institute of Technology Research Fund Program for Young Scholars
  5. Young Elite Scientist Sponsorship Program of Beijing Association for Science and Technology ( 2021-2023)

向作者/读者索取更多资源

The development of purely organic thermally activated delayed fluorescence (TADF) materials has brought a breakthrough in the field of organic optoelectronics, especially in the biomedical sector. With unique photophysical properties and reduced health risks, these metal-free TADF luminophores have shown great potential in applications such as fluorescence imaging and photodynamic therapy. The systematic review in this article highlights the importance of TADF materials in biomedicine and discusses future challenges and developments.
The development of simple, efficient, and biocompatible organic luminescent molecules is of great significance to the clinical transformation of biomaterials. In recent years, purely organic thermally activated delayed fluorescence (TADF) materials with an extremely small single-triplet energy gap (Delta E-ST) have been considered as the most promising new-generation electroluminescence emitters, which is an enormous breakthrough in organic optoelectronics. By merits of the unique photophysical properties, high structure flexibility, and reduced health risks, such metal-free TADF luminophores have attracted tremendous attention in biomedical fields, including conventional fluorescence imaging, time-resolved imaging and sensing, and photodynamic therapy. However, there is currently no systematic summary of the TADF materials for biomedical applications, which is presented in this review. Besides a brief introduction of the major developments of TADF material, the typical TADF mechanisms and fundamental principles on design strategies of TADF molecules and nanomaterials are subsequently described. Importantly, a specific emphasis is placed on the discussion of TADF materials for various biomedical applications. Finally, the authors make a forecast of the remaining challenges and future developments. This review provides insightful perspectives and clear prospects towards the rapid development of TADF materials in biomedicine, which will be highly valuable to exploit new luminescent materials.

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