Visible-Light-Driven, Iridium-Catalyzed Hydrogen Atom Transfer: Mechanistic Studies, Identification of Intermediates, and Catalyst Improvements

被引:14
|
作者
Park, Yoonsu [1 ]
Tian, Lei [1 ]
Kim, Sangmin [1 ]
Pabst, Tyler P. [1 ]
Kim, Junho [1 ]
Scholes, Gregory D. [1 ]
Chirik, Paul J. [1 ]
机构
[1] Princeton Univ, Dept Chem, Frick Lab, Princeton, NJ 08544 USA
来源
JACS AU | 2022年 / 2卷 / 02期
关键词
proton coupled electron transfer; iridium; catalysis; photoreduction; ultrafast spectroscopy; weak bonds; kinetic isotope effect; COUPLED ELECTRON-TRANSFER; DENSITY-FUNCTIONAL THEORY; C-H BONDS; ENERGY-TRANSFER; REDUCTIVE ELIMINATION; OXIDATIVE ADDITION; AROMATIC-COMPOUNDS; RADICAL CATIONS; RATIONAL DESIGN; ANTHRACENE;
D O I
10.1021/jacsau.1c00460
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The harvesting of visible light is a powerful strategy for the synthesis of weak chemical bonds involving hydrogen that are below the thermodynamic threshold for spontaneous H-2 evolution. Piano-stool iridium hydride complexes are effective for the bluelight-driven hydrogenation of organic substrates and contra-thermodynamic dearomative isomerization. In this work, a combination of spectroscopic measurements, isotopic labeling, structure-reactivity relationships, and computational studies has been used to explore the mechanism of these stoichiometric and catalytic reactions. Photophysical measurements on the iridium hydride catalysts demonstrated the generation of long-lived excited states with principally metal-to-ligand charge transfer (MLCT) character. Transient absorption spectroscopic studies with a representative substrate, anthracene revealed a diffusion-controlled dynamic quenching of the MLCT state. The triplet state of anthracene was detected immediately after the quenching events, suggesting that triplet-triplet energy transfer initiated the photocatalytic process. The key role of triplet anthracene on the post-energy transfer step was further demonstrated by employing photocatalytic hydrogenation with a triplet photosensitizer and a HAT agent, hydroquinone. DFT calculations support a concerted hydrogen atom transfer mechanism in lieu of stepwise electron/proton or proton/electron transfer pathways. Kinetic monitoring of the deactivation channel established an inverse kinetic isotope effect, supporting reversible C(sp(2))-H reductive coupling followed by rate-limiting ligand dissociation. Mechanistic insights enabled design of a piano-stool iridium hydride catalyst with a rationally modified supporting ligand that exhibited improved photostability under blue light irradiation. The complex also provided improved catalytic performance toward photoinduced hydrogenation with H-2 and contra-thermodynamic isomerization.
引用
收藏
页码:407 / 418
页数:12
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