| Literature DB >> 29675234 |
Valerie E Fleischauer1, Salvador B Muñoz Iii1, Peter G N Neate1, William W Brennessel1, Michael L Neidig1.
Abstract
While iron-NHC catalysed cross-couplings have been shown to be efEntities:
Year: 2018 PMID: 29675234 PMCID: PMC5890793 DOI: 10.1039/c7sc04750a
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Scheme 1Examples of iron–NHC catalysed cross-coupling reactions.
Fig. 1Iron–NHC pre-catalyst formation. (A) 5 K Mössbauer spectrum of the pre-catalyst reaction iron products in frozen THF solution. The data is shown as black dots and individual fit components are given by blue (1) and orange (1-THF) lines. (B) Single crystal X-ray crystal structure of (IMes)Fe(1,3-dioxan-2-ylethyl)2 (1) with thermal ellipsoids shown at the 50% probability level and selected bond distances and angles given, H-atoms were omitted for clarity.
Comparison of calculated and experimental Fe–O bonding parameters for IMes–iron(ii)–alkyl complexes
| Complex | Bond lengths (Å) | Mayer bond order | ||||
| Fe–O interaction (Å) | Gas phase calcd | Solution calcd | Exptl | Gas phase calcd | Solution calcd | |
|
| 2.4632(9) | 2.4193 | 2.4052 | 0.042 | 0.071 | 0.042 |
| 2.4428(9) | 2.3939 | 2.4251 | 0.046 | 0.099 | 0.047 | |
|
| 2.181(4) | 2.2468 | 2.2555 | 0.224 | 0.224 | 0.176 |
Mayer bond order calculated directly from crystallographic coordinates.
Fig. 25 K Mössbauer spectrum of the pre-catalyst reaction iron products in frozen THF solution following formation at RT. The data is shown as black dots and individual fit components are given by blue (1, 76% of total iron) and orange (1-THF, 24% of total iron) lines.
Pre-catalyst reaction condition and NHC additive effects on alkyl–alkyl cross-coupling reactions
|
| |||||
| NHC | Pre-treatment | Pre-treatment time (min) |
|
|
|
| IMes·HCl | 54 | 1 | 80 | 14 | 6 |
| IMes·HCl | 54 | 20 | 78 | 15 | 7 |
| IMes·HCl | RT | 60 | 81 | 14 | 6 |
| SIPr·HCl | 54 | 1 | 15 | 59 | 26 |
| SIPr·HCl | 54 | 20 | 23 | 56 | 21 |
Fig. 3X-ray structural and Mössbauer analysis of 2-Br and 3. X-ray crystal structures of (A) (IMes)FeBr(1,3-dioxan-2-ylethyl) (2-Br) and (B) (IMes)FeBr2(THF) (3). For both structures, thermal ellipsoids shown at the 50% probability level and selected bond distances and angles given, H atoms are omitted for clarity. Note that these species co-crystallise in an ∼86 : 14 ratio of 2-Br : 3. (C) 5 K Mössbauer spectrum of 57Fe-enriched crystals containing 2-Br and 3 redissolved in THF. The data is shown as black dots and individual fit components are given by green (2-Br) and red (3) lines.
Mössbauer parameters of iron(ii)–NHC complexes
| Complex | Sample |
| Δ |
|
| |||
|
| Frozen soln | 0.57 | 2.34 |
| Solid | 0.57 | 2.42 | |
|
| Frozen soln | 0.50 | 2.70 |
|
| Frozen soln | 0.67 | 2.90 |
| Solid | 0.67 | 2.90 | |
|
| Frozen soln | 0.90 | 3.18 |
| Solid | 0.90 | 3.18 | |
|
| Frozen soln | 0.45 | 2.87 |
| Solid | 0.44 | 2.91 | |
|
| |||
| (IMes)2FeCl2 | Solid | 0.80 | 2.12 |
| (MeIPr)2FePhBr | Solid | 0.58 | 3.10 |
| (MeIPr)2FePh2 | Solid | 0.47 | 2.48 |
| (IPr)Fe(CH2TMS)2 | Solid | 0.34 | 1.04 |
Reactivity of 1 with 1-iodo-3-phenylpropane in THF at 23 °C
|
| ||||||
| Formation of |
| TON | % yield with respect to iron | |||
|
|
|
|
| |||
|
| 40 | 8 | 360 | 320 | 0 | 0 |
|
| 20 | 2 | 162 | 30 | 0 | 10 |
| Isolated | 20 | 2 | 160 | 20 | 0 | 20 |
| Isolated | 0.7 | 0.7 | 40 | 0 | 12 | 18 |
1 formed from the reaction of Fe(OAc)2 with 2.1 equiv. of IMes·HCl and 12 equiv. of (2-(1,3-dioxan-2-yl)ethyl)magnesium bromide at 54 °C and cooled to 23 °C before addition of R–I.
2-Br first reacted with 1 equiv. (2-(1,3-dioxan-2-yl)ethyl)magnesium bromide at 23 °C for 1 min.
Fig. 4In situ freeze trapped Mössbauer spectra of reactions of isolated 1 with excess and substoichiometric alkyl iodide. 5 K Mössbauer spectra of the iron speciation in solution following addition of (A) 20 equiv. of 1-iodo-3-phenylpropane to isolated 1 and (B) 0.7 equiv. of 1-iodo-3-phenylpropane to 1 at room temperature.
Fig. 55 K Mössbauer spectrum of in situ iron species present in solution 2 h into the slow Grignard reagent addition step. The individual components of the fit are shown which include 3 (red, 82%) and 2-Br (green, 18%).
Scheme 2Iron–IMes catalysed cross-coupling reactions with alkyl nucleophiles containing alternative terminal moieties.
Fig. 6Iron–SIPr pre-catalyst formation. (A) 5 K Mössbauer spectrum of the pre-catalyst reaction iron products using SIPr·HCl as the ligand additive in frozen THF solution. The data is shown as black dots and the fit as a solid line. (B) Single crystal X-ray crystal structure of (SIPr)Fe(1,3-dioxan-2-ylethyl)2 (4) with thermal ellipsoids shown at the 50% probability level and select bond distances and angles given, H atoms are omitted for clarity.
Scheme 3Summary of observed iron(ii) species and their reactive transformations in the Cárdenas iron–NHC catalysed alkyl–alkyl cross-coupling system (note: X = Br or I).