Organic Photoredox Catalysts Exhibiting Long Excited-State Lifetimes

Synlett ◽  
2021 ◽  
Author(s):  
Youngmin You ◽  
Dong Yeun Jeong

AbstractOrganic photoredox catalysts with a long excited-state lifetime have emerged as promising alternatives to transition-metal-complex photocatalysts. This paper explains the effectiveness of using long-lifetime photoredox catalysts for organic transformations, focusing on the structures and photophysics that enable long excited-state lifetimes. The electrochemical potentials of the reported organic, long-lifetime photocatalysts are compiled and compared with those of the representative Ir(III)- and Ru(II)-based catalysts. This paper closes by providing recent demonstrations of the synthetic utility of the organic catalysts.1 Introduction2 Molecular Structure and Photophysics3 Photoredox Catalysis Performance4 Catalysis Mediated by Long-Lifetime Organic Photocatalysts4.1 Photoredox Catalytic Generation of a Radical Species and its Addition to Alkenes4.2 Photoredox Catalytic Generation of a Radical Species and its Addition to Arenes4.3 Photoredox Catalytic Generation of a Radical Species and its Addition to Imines4.4 Photoredox Catalytic Generation of a Radical Species and its Addition to Substrates Having C≡X Bonds (X=C, N)4.5 Photoredox Catalytic Generation of a Radical Species and its Bond Formation with Transition Metals4.6 Miscellaneous Reactions of Radical Species Generated by Photoredox Catalysis5 Conclusions

2016 ◽  
Vol 14 (38) ◽  
pp. 9088-9092 ◽  
Author(s):  
J. R. Ochola ◽  
M. O. Wolf

Four different iridium(iii) polypyridyl complexes with varying excited state lifetimes are used as photocatalysts to study the effect of excited state lifetime on the rate of a prototypical photoredox-catalyzed reaction, the trifluoromethylation of quinoline.


2020 ◽  
Vol 22 (33) ◽  
pp. 18639-18645 ◽  
Author(s):  
Iker Lamas ◽  
Raúl Montero ◽  
Virginia Martínez-Martínez ◽  
Asier Longarte ◽  
Lluís Blancafort

The excited-state lifetime of 5- and 6-azaindole (AI) is 100–800 fs, and that of the 7-AI isomer several orders of magnitude slower. The three molecules have a similar decay mechanism, and the difference lies in the relative energy of the nπ* state.


Synlett ◽  
2021 ◽  
Author(s):  
Thomas S. Teets ◽  
Yanyu Wu ◽  
Dooyoung Kim

AbstractPhotoredox catalysis has proven to be a powerful tool in synthetic organic chemistry. The rational design of photosensitizers with improved photocatalytic performance constitutes a major advancement in photoredox organic transformations. This review summarizes the fundamental ground-state and excited-state photophysical and electrochemical attributes of molecular photosensitizers, which are important determinants of their photocatalytic reactivity.


2020 ◽  
Author(s):  
Tomislav Rovis ◽  
Benjamin D. Ravetz ◽  
Nicholas E. S. Tay ◽  
Candice Joe ◽  
Melda Sezen-Edmonds ◽  
...  

We describe a new family of catalysts that undergo direct ground state singlet to excited state triplet excitation with IR light, leading to photoredox catalysis without the energy waste associated with intersystem crossing. The finding allows a mole scale reaction in batch using infrared irradiation.


Author(s):  
Woojin Park ◽  
Seunghoon Lee ◽  
Miquel Huix-Rotllant ◽  
Michael Filatov ◽  
Cheol Ho Choi

2007 ◽  
Vol 24 (3) ◽  
pp. 671 ◽  
Author(s):  
E. A. Rotberg ◽  
B. Barrett ◽  
S. Beattie ◽  
S. Chudasama ◽  
M. Weel ◽  
...  

2011 ◽  
Vol 312 (9) ◽  
pp. 092062 ◽  
Author(s):  
V Werner ◽  
N Cooper ◽  
M Bonett-Matiz ◽  
E Williams ◽  
J-M Régis ◽  
...  

Langmuir ◽  
2004 ◽  
Vol 20 (5) ◽  
pp. 1582-1586 ◽  
Author(s):  
Junhua Yu ◽  
Xuesong Wang ◽  
Baowen Zhang ◽  
Yuxiang Weng ◽  
Lei Zhang

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