| Literature DB >> 31850604 |
Julia Strehl1, Christoph Kahrs1, Thomas Müller1, Gerhard Hilt1, Jens Christoffers1.
Abstract
Cyclic α-(ortho-iodophenyl)-β-oxoesters were converted in a ring-expanding transformation to furnish benzannulated cycloalkanone carboxylic esters. The reaction sequence started by electrochemical reduction of the iodoarene moiety. In a mechanistic rationale, the resulting carbanionic species was adding to the carbonyl group under formation of a strained, tricyclic benzocyclobutene intermediate, which underwent carbon-carbon bond cleavage and rearrangement of the carbon skeleton by retro-aldol reaction. The scope of the reaction sequence was investigated by converting cyclic oxoesters with different ring sizes yielding benzocycloheptanone, -nonanone and -decanone derivatives in moderate to good yields. Furthermore, acyclic starting materials and cyclic compounds carrying additional substituents on the iodophenyl ring were submitted to this reaction sequence. The starting materials for this transformation are straightforwardly obtained by conversion of β-oxoesters with phenyliodobis(trifluoroacetate).Entities:
Keywords: annulation; electrosynthesis; medium-ring compounds; reduction; ring expansion
Year: 2020 PMID: 31850604 PMCID: PMC7155071 DOI: 10.1002/chem.201905570
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236
Scheme 1Previously reported ring‐transformation of oxoester 1 a with an in situ generated aryne4 via intermediates 3 and 4. Entry into the same reaction sequence leading to product 2 a by electrochemical reduction of iodoarene 5 a (this work) and electrochemical ring‐enlargement of oxoester 6 by cathodic reduction. Conditions: 3 equiv TMSCl, nEt4NOTos, DMF, 23 °C, 0.2 A, 4 F mol−1, Pb cathode, carbon anode.8
Selected examples of variation to the reaction conditions.
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Entry |
Change from initial conditions[b] |
Yield of |
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1 |
no change |
54 |
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2 |
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55 |
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3 |
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4 |
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71 |
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5 |
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43 |
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6 |
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36 |
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7 |
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41 |
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8 |
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60 |
[a] Reactions were performed in a divided cell on a 0.25 mmol scale with a substrate concentration of 36 mmol l −1. [b] Initial conditions: 3.0 equiv TMSCl, 0.3 mol l −1 nBu4NClO4, DMF, 23 °C, 10 mA, 2.0 F mol−1, CuSn17Pb (leaded bronze) cathode, graphite anode. [c] Yield determined by GLC of the unpurified reaction mixture with mesitylene as internal standard. [d] This change was kept for entries 3–7. [e] This change was kept for entries 6–8.
Scope of the transformation with various α‐(ortho‐iodophenyl)‐β‐oxoesters 5; yields refer to isolated and purified products.
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[a] The reaction was performed on a 0.25 mmol scale. [b] The reaction was performed on a 1 mmol scale. [c] Protodeiodination product 8 was formed and isolated in 7 % yield. [d] Unspecified decomposition.
Scheme 2Preparation of starting materials 5 a–m from oxoesters 1 a–g and PIFA 9 a and PIFA derivatives 9 i–m.
Scheme 3Control experiments for the ionic or radical transformation of starting material 5 a.
Scheme 4Mechanistic proposal for the transformation of compound 5 a′ by two‐electron reduction in the presence of TMSCl to product 2 a′. DFT calculations were performed at M06‐2X/Def2‐TZVP with the methyl instead of the ethyl esters; species 14, 15, and 2 a′ were calculated as hydrogen‐bonded monohydrates.