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  5. Red-Light-Active <i>N,C,N-</i>Pincer Bismuthinidene: Excited State Dynamics and Mechanism of Oxidative Addition into Aryl Iodides

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Article
English
2025

Red-Light-Active <i>N,C,N-</i>Pincer Bismuthinidene: Excited State Dynamics and Mechanism of Oxidative Addition into Aryl Iodides

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English
2025
Journal of the American Chemical Society
DOI: 10.1021/jacs.4c16815

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Frank Neese
Frank Neese

Max Planck

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Alexios Stamoulis
Mauro Mato
Paolo Cleto Bruzzese
+5 more

Abstract

Despite the progress made in the field of synthetic organic photocatalysis over the past decade, the use of higher wavelengths, especially those in the deep-red portion of the electromagnetic spectrum, remains comparatively rare. We have previously disclosed that a well-defined N,C,N-pincer bismuthinidene (1a) can undergo formal oxidative addition into a wide range of aryl electrophiles upon absorption of low-energy red light. In this study, we map out the photophysical dynamics of 1a and glean insights into the nature of the excited state responsible for the activation of aryl electrophiles. Transient absorption and emission techniques reveal that, upon irradiation with red light, the complex undergoes a direct S0 → S1 metal-to-ligand charge transfer (MLCT) transition, followed by rapid intersystem crossing (ISC) to a highly reducing emissive triplet state (−2.61 V vs Fc+/0 in MeCN). The low dissipative losses incurred during ISC (∼6% of the incident light energy) help rationalize the ability of the bismuthinidene to convert low-energy light into useful chemical energy. Spectroelectrochemical and computational data support a charge-separated excited-state structure with radical-anion character on the ligand and radical-cation character on bismuth. Kinetic studies and competition experiments afford insights into the mechanism of oxidative addition into aryl iodides; concerted and inner-sphere processes from the triplet excited state are ruled out, with the data strongly supporting a pathway that proceeds via outer-sphere dissociative electron transfer.

How to cite this publication

Alexios Stamoulis, Mauro Mato, Paolo Cleto Bruzzese, Markus Leutzsch, Alejandro Cadranel, Marcos Gil‐Sepulcre, Frank Neese, Josep Cornellà (2025). Red-Light-Active <i>N,C,N-</i>Pincer Bismuthinidene: Excited State Dynamics and Mechanism of Oxidative Addition into Aryl Iodides. Journal of the American Chemical Society, DOI: 10.1021/jacs.4c16815.

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Publication Details

Type

Article

Year

2025

Authors

8

Datasets

0

Total Files

0

Language

English

Journal

Journal of the American Chemical Society

DOI

10.1021/jacs.4c16815

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