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Predictive, Data-Driven Design of Red-Light Photoredox Catalysts for C─Heteroatom Bond Formation
Gizatullin, Amir
, Yuan, Tingting, Grotjahn, Sascha, Cavallo, Luigi
, König, Burkhard
, Zhu, Chen
and Rueping, Magnus
(2026)
Predictive, Data-Driven Design of Red-Light Photoredox Catalysts for C─Heteroatom Bond Formation.
Angewandte Chemie.
Date of publication of this fulltext: 03 Feb 2026 05:30
Article
DOI to cite this document: 10.5283/epub.78533
Abstract
Photocatalysis is a powerful tool for the synthesis of organic molecules, yet its widespread application is hindered by the dependence on high-energy light sources and expensive metal-based catalysts, which can limit scalability and environmental sustainability. In this study, we present a modular design strategy for organic dyes engineered for efficient red-light absorption, enabling ...
Photocatalysis is a powerful tool for the synthesis of organic molecules, yet its widespread application is hindered by the dependence on high-energy light sources and expensive metal-based catalysts, which can limit scalability and environmental sustainability. In this study, we present a modular design strategy for organic dyes engineered for efficient red-light absorption, enabling photocatalytic reactions under low-energy irradiation. Our findings establish a clear relationship between the oxidation potential of the photocatalyst and the nature of its donor moiety, as well as between the reduction potential and the electronic characteristics of its core structure. Moreover, we demonstrate that the E0-0 energy of a photocatalyst can be predicted via multivariate linear regression using the donor's oxidation potential and the core's reduction potential as descriptors. Utilizing this strategy, we synthesized red-light-absorbing photocatalysts that efficiently promote C─heteroatom cross-coupling reactions under mild conditions. This approach overcomes the limitations of blue-light photocatalysis by offering broad substrate compatibility, including π-conjugated aryl bromides and photolabile functional groups, while minimizing undesirable hydrodehalogenation. By reducing reliance on precious metals and improving energy efficiency, our approach provides a scalable alternative to traditional photocatalysis and advances the development of metal-free photocatalysts for sustainable chemistry.
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Details
| Item type | Article | ||||
| Journal or Publication Title | Angewandte Chemie | ||||
| Publisher: | Wiley | ||||
|---|---|---|---|---|---|
| Date | 19 January 2026 | ||||
| Institutions | Chemistry and Pharmacy > Institut für Organische Chemie > Lehrstuhl Prof. Dr. Burkhard König | ||||
| Projects |
Funded by:
Deutsche Forschungsgemeinschaft (DFG)
(426795949)
| ||||
| Identification Number |
| ||||
| Keywords | C-heteroatom bonds • Cyanoarenes • Nickel • Photocatalysts • Red light | ||||
| Dewey Decimal Classification | 500 Science > 540 Chemistry & allied sciences | ||||
| Status | Published | ||||
| Refereed | Yes, this version has been refereed | ||||
| Created at the University of Regensburg | Partially | ||||
| URN of the UB Regensburg | urn:nbn:de:bvb:355-epub-785330 | ||||
| Item ID | 78533 |
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