The Rise and Future of Discrete Organic–Inorganic Hybrid Nanomaterials

Hybrid nanomaterials (HNs), the combination of organic semiconductor ligands attached to nanocrystal semiconductor quantum dots, have applications that span a range of practical fields, including biology, chemistry, medical imaging, and optoelectronics. Specifically, HNs operate as discrete, tunable...

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Veröffentlicht in:ACS Physical Chemistry Au 2022-09, Vol.2 (5), p.364-387
Hauptverfasser: Brett, Matthew W., Gordon, Calum K., Hardy, Jake, Davis, Nathaniel J. L. K.
Format: Artikel
Sprache:eng
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Zusammenfassung:Hybrid nanomaterials (HNs), the combination of organic semiconductor ligands attached to nanocrystal semiconductor quantum dots, have applications that span a range of practical fields, including biology, chemistry, medical imaging, and optoelectronics. Specifically, HNs operate as discrete, tunable systems that can perform prompt fluorescence, energy transfer, singlet fission, upconversion, and/or thermally activated delayed fluorescence. Interest in HNs has naturally grown over the years due to their tunability and broad spectrum of applications. This Review presents a brief introduction to the components of HNs, before expanding on the characterization and applications of HNs. Finally, the future of HN applications is discussed.
ISSN:2694-2445
2694-2445
DOI:10.1021/acsphyschemau.2c00018