| Literature DB >> 26199673 |
Michael Weßling1, Hans J Schäfer1.
Abstract
Nitroalkenes are easily accessible in high variety by condensation ofEntities:
Keywords: 1,4-dinitrocompounds; C–C bond formation; cathodic hydrodimerization; electrosynthesis; nitroalkene
Year: 2015 PMID: 26199673 PMCID: PMC4505112 DOI: 10.3762/bjoc.11.131
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Scheme 1Proposed mechanisms via pathways (I) to (III) for the cathodic hydrodimerization of olefins with electron attracting substituents.
Preparative hydrodimerization of nitroalkenes.
| Nitroalkene | Hydrodimera | Yield (%)b |
| 88 | ||
| 71c | ||
| 84 | ||
| 75 | ||
| 68 | ||
| 85 | ||
| 73d | ||
| 83 | ||
aProducts are mixtures of diastereomers (see chapter: Structure of the hydrodimers). bIsolated yield; material yield corresponds to 95–100% of the current yield. cSee text following Table 4. dReduction in divided cell, as product is sensitive to anodic oxidation; yield in undivided cell: 60%.
Hydrodimerization of 1 in dependence on the electrolyte composition.
| Nr. | electrolyte | HOAca | yield (%)b | |||||
| 1 | 3.06 | DMF/H2O (9:1) | 0.2 M | 20 | 1.95 | 24 | 20 | – |
| 2 | 3.06 | DMF/H2O (25:1) | – | 20 | 1.25 | c | – | – |
| 3 | 5.09 | DMF | 1 × 5.0 | 30 | 1.08 | 30 | 7 | 20 |
| 4 | 7.50 | DMF | 2 × 3.7 | 30 | 1.5 | 48 | 4 | – |
| 5 | 6.13 | DMF | 10 × 0.6 | 30 | 1.01 | 60 | – | – |
a0.2 M HOAc in electrolyte (Nr. 1); addition of corresponding fractions of an equivalent of the H+-donor at the start (Nr. 3, 4, 5) and after throughput of the respective theoretical charge (Nr. 4, 5). bIsolated by flash chromatography. cProduct mixture, about 30% of 2.
Scheme 2Cathodic reduction of nitroalkene 1 to hydrodimer 2 and oxime 5.
Hydrodimerization of 1a in dependence of temperature, conversion and cell type.
| Nr. | Yield | ||
| 5c | 30 | 1.01 | 60 |
| 6 | 50 | 1.19 | 63 |
| 7 | −10 | 1.27 | 70 |
| 8 | 0 | 1.19 | 81 |
| 9 | 0 | 0.51 | 46 (83)d |
| 10e | 30 | 1.42 | 44 |
| 11f | 0 | 0.98 | 88 |
a5.03 mmol 1 in 25 mL 0.2 M TEA-pTos/DMF. bIsolated yield. cNr. 5 in Table 1 is shown for comparison. dYield in parenthesis based on conversion; 45% reisolated 1. eUndivided cell, 0.25 equiv HOAc. fUndivided cell without addition of acetic acid.
Scheme 3Preparation of the 1-aryl-2-nitroalkenes 1, 4, 8–15.
Preparation of 1-aryl-2-nitroalkenes.
| Aldehyde | Nitroalkane | Method | Nitroalkenea | Yield (%)b |
| c | 50c | |||
| A | 54 | |||
| A | 62 | |||
| B | 44 | |||
| d | 42d | |||
| A | 75 | |||
| A | 10e | |||
| A | 58 | |||
| B | 36 | |||
| A | 62 | |||
aFor the structures of the nitroalkenes see Scheme 4. bIsolated, not optimized yield. cRef. [23]. dRef. [24]. eCrude yield higher, product decomposes slowly during recrystallization.
Scheme 4Reduction potentials (Ep,c in Volt) of nitroolefins. Conditions: amalgamated gold wire, v = 0.1 V/s, 0.2 M TEA-pTos in DMF, accuracy of Ep,c = +/− 0.02V vs SCE, measured against the Marple electrode and converted to SCE.
Figure 1(a) CV of 15; v = 0.1 V/s, (b) CV of 15; v = 10 V/s.
Scheme 5Hydrodimerization of nitroalkene 14 and 15.
Scheme 6(a) Intramolecular hydrocoupling of dinitrodiene 16 and (b) hydrodimerization of 1-nitrocyclohexene (17).
Scheme 7Possible stereoisomers and their mirror images for the hydrodimers 2 and 18–23; R and S are the configurations at the stereogenic centers.
δ-Values and multiplicities of the alkyl protons in 2a–e.
| Isomer | δ (ppm) and multiplicity for H-atom at carbon-atom Nr.: | |||||
| 1 | 6 | 2 | 5 | 3 | 4 | |
| 1.25, d | 4.85, dq | 3.44, d | ||||
| 1.28, d | 1.90, d | 4.91, dq | 4.79, dq | 3.36 and 3.71, 2 dd | ||
| 1.74, d | 5.21/5.22, 2 dqa | 3.64, dd | ||||
| 1.29, d | 4.47–4.56, m | 4.13–4.15, m | ||||
| 1.25, d | 1.30, d | 4.44, dq | 4.62, dq | 4.59, dd | 3.33, dd | |
aCoupling pattern of the α-nitro protons is verified by NMR-simulation.
Figure 21H NMR spectrum of 18b (without aromatic H); below experimental spectrum, above: simulated signals for 2-H to 7-H.
Ratioa of the diastereomers a–e from the dimers 2 and 18−23.
| Dimer | |||||
| 10 | 14 | 2 | 1 | 3 | |
| 11 | 17 | 4 | 1 | 3 | |
| 12 | 20 | 6 | 1 | 6 | |
| 7 | 14 | 3 | 1 | 2 | |
| 11 | 16 | 3 | 1 | 2 | |
| 1.7 | 3.2 | 1.7 | 1 | 5.5 | |
| 2 | 2 | Σ 1(for | |||
aDetermined by comparing the intensities in the 1H NMR spectra of different mixtures; average values from different electrolyses.
Calculated and experimental 13C shifts for 18.
| Carbon atoms | C-1/-8 | C-2/-7 | C-3/-6 | C-4/-5 |
| δ (ppm) calculated | 15.0 | 22.0 | 90.4 | 54.4 |
| δ (ppm) found | 9.80–10.81 | 20.98–26.00 | 88.92–91.70 | 48.73–51.31 |