| Literature DB >> 29563528 |
Chang Xu1, Wen-Hao Guo1, Xu He1, Yin-Long Guo1, Xue-Ying Zhang1, Xingang Zhang2.
Abstract
Relatively low reactivity hinders using chlorodifluoromethane (ClCF2H) for general difluoromethylation with organic molecules, despite its availability as an inexpensive industrial chemical. To date, transformations of ClCF2H are very limited and most of them involve difluorocarbene intermediate. Here, we describe a strategy for difluoromethylation of aromatics through nickel-catalyzed cross-coupling of ClCF2H with readily accessible (hetero)aryl chlorides. The reaction proceeds under mild reaction conditions with high efficiency and features synthetic simplicity without preformation of arylmetals and broad substrate scope, including a variety of heteroaromatics and commercially available pharmaceuticals. The reliable practicability and scalability of the current nickel-catalyzed process has also been demonstrated by several 10-g scale reactions without loss of reaction efficiency. Preliminary mechanistic studies reveal that the reaction starts from the oxidative addition of aryl chlorides to Ni(0) and a difluoromethyl radical is involved in the reaction, providing a route for applications of ClCF2H in organic synthesis and related chemistry.Entities:
Year: 2018 PMID: 29563528 PMCID: PMC5862906 DOI: 10.1038/s41467-018-03532-1
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1Strategies in activation of ClCF2H. a Previous work, activation of ClCF2H via a difluorocarbene pathway. b This work, a new activation of ClCF2H through a difluoromethyl radical pathway
Representative results for the optimization of Ni-catalyzed difluoromethylation of 2a with C1CF2Ha
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| Entry | Additive (x) | yieldb (%), | |
| 1 |
| MgCl2 (1.5) | 16 |
| 2 |
| MgCl2 (1.5) | 21 |
| 3 |
| MgCl2 (1.5) | 10 |
| 4 |
| MgCl2 (1.5) | 33 |
| 5 | MgCl2 (1.5) | 46 | |
| 6 | MgCl2 (1.5) | 35 | |
| 7 | MgCl2 (1.5) | 38 | |
| 8 | MgCl2 (1.5) | 31 | |
| 9c | MgCl2 (4.0) | 59 | |
| 10d | MgCl2 (4.0) | 79 | |
| 11e | MgCl2 (4.0) | 77 | |
| 12f | MgCl2 (4.0) | NR | |
| 13g | DMAP (20) | MgCl2 (4.0) | NR |
NR no reaction
aReaction conditions (unless otherwise specified): 1 (2.6 M in DMA, 6.5 equiv.), 2a (0.2 mmol, 1.0 equiv.), DMA (2 mL)
bDetermined by 19F NMR using fluorobenzene as an internal standard
cNiCl2 (10 mol%) and Zn (3.0 equiv.) were used and reaction run at 60 °C
dNiCl2 (15 mol %), L4 (10 mol%), Zn (3.0 equiv.), and 3 Å MS were used and reaction run at 60 °C
eNiBr2 (15 mol%), L4 (10 mol%), Zn (3.0 equiv.), and 3 Å MS were used and reaction run at 60 °C
fReaction run in the absence of nickel catalyst
gReaction run in the absence of L4
Scope of the nickel-catalyzed reductive cross-coupling of ClCF2H with aryl chloridesa
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aReaction conditions (unless otherwise specified): (hetero)aryl chloride (0.2 mmol, 1.0 equiv.), 1 (2.6 M in DMA, 6.5 equiv.), DMA (2 mL), 60 °C, 20 h. Average isolated yields from two runs
bYield determined by 19F NMR using fluorobenzene or trifluorotoluene as an internal standard
c15 mol% of NiCl2 and 10 mol% of L4 were used
d2.0 equiv. of ClCF2H was used and the reaction was conducted on 3 mmol scale
e20 mol% of NiBr2 and 10 mol% of L4 with or without 3 Å MS were used
f20 mol% of NiCl2 and 10 mol% of L4 were used
Late-stage difluoromethylation of pharmaceuticalsa
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aReaction conditions (unless otherwise specified): (hetero)aryl chloride (0.2 mmol, 1.0 equiv.), 1 (2.6 M in DMA, 6.5 equiv.), DMA (2 mL), 60 °C, 20 h. Average isolated yields from two runs
b20 mol% of NiBr2 and 10 mol% of L4 with or without 3 Å MS were used
c15 mol% of NiCl2 and 10 mol% of L4 were used
dYield determined by 19F NMR using fluorobenzene as an internal standard
e20 mol% of NiCl2 and 10 mol% of L4 were used
f2.0 equiv. of ClCF2H was used and the reaction was conducted on 3 mmol scale
Fig. 2Ten-gram scale reaction of aryl chlorides with ClCF2H. a Reaction of ClCF2H with 2c. b Reaction of ClCF2H with 2l. c Reaction of ClCF2H with 2v. d Reaction of ClCF2H with 6k
Fig. 3Reaction of ClCF2H with zinc. a Reaction of ClCF2H with zinc in DMA. b Reaction of ClCF2H with zinc under standard reaction conditions. c Reaction of arylchloride 2c with difluoromethyl zinc species
Fig. 4Mechanistic studies. a Reaction of nickel complex B1 with ClCF2H. b B1 or NiCl2/ditBuBpy catalyzed reaction of 2a with ClCF2H. c Reaction of C1 with 2a. d X-ray crystal structure of C1. e Experiments to trap the difluoromethyl radical by reaction of 2c and 8 with ClCF2H. f Reaction of B1 and 8 with ClCF2H. g Reaction of 2a and 8 with C1
Fig. 5The role of DMAP. a [NiCl2(ditBuBpy)] (D1) catalyzed reaction between 2a and 1 with or without DMAP. b [NiCl2(DMAP)4] (D2) catalyzed reaction between 2a and 1 with or without ditBuBpy. c Reaction of B1 with ClCF2H in the presence of DMAP. d Reaction of B1 with ClCF2H without DMAP
Fig. 6Proposed reaction mechanism. a Proposed mechanism via a radical-cage-rebound process. b Proposed mechanism via a radical chain process