| Literature DB >> 31802549 |
Pit van Bonn1, Carsten Bolm1, José G Hernández1.
Abstract
Esters and amides were mechanochemically prepared by palladium-catalyzed carbonylative reactions of aryl iodides by using molybdenum hexacarbonyl as a convenient solid carbonyl source and avoiding a direct handling of gaseous carbon monoxide. Real-time monitoring of the mechanochemical reaction by in situ pressure sensing revealed that CO is rapidly transferred from Mo(CO)6 to the active catalytic system without significant release of molecular carbon monoxide.Entities:
Keywords: ball milling; carbonylation; mechanochemistry; molybdenum hexacarbonyl; real-time monitoring
Year: 2020 PMID: 31802549 PMCID: PMC7065133 DOI: 10.1002/chem.201904528
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236
Scheme 1Mechanochemical carbonylation reactions by ball milling.
Screening of metal carbonyls M(CO)6 (M=Cr, Mo, W) in the mechanochemical carbonylation of 1 a with n‐butanol 2 a.[a]
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|---|---|---|---|
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Entry |
M(CO)6 |
Yield |
Yield |
|
1 |
Cr(CO)6 |
13 |
26 |
|
|
|
|
|
|
3 |
W(CO)6 |
22 |
26 |
[a] Reaction conditions: 1 a (0.2 mmol), 2 a (0.4 mmol), M(CO)6 (0.2 mmol), Pd(OAc)2 (0.02 mmol), PPh3 (0.04 mmol), and K3PO4 (0.6 mmol) were milled in a 5 mL stainless steel milling jar with one 10 mm milling ball of the same material. [b] Determined by 1H NMR spectroscopy using ethylbenzene as the internal standard.
Figure 1a) Pressure monitoring of milling experiments of M(CO)6 and K3PO4 (1 equiv). The inset shows the control experiments in the absence of K3PO4. For pressure and temperature monitoring profiles, see Figure S2 (Supporting Information). b) Pressure monitoring of milling experiments between Mo(CO)6 and K3PO4 (1–3 equiv) and of the mechanochemical palladium‐catalyzed carbonylation reaction between 1 a, 2 a (2 equiv), Mo(CO)6 (1 equiv), and K3PO4 (2 equiv). Milling parameters: planetary ball mill operated at 800 rpm using a ZrO2 milling vessel charged with five milling balls (10 mm in diameter), for additional experimental details, see Supporting Information.
Scheme 2Mechanochemical carbonylation reaction using gaseous CO by ball milling.
Scheme 3Mechanochemical alkoxycarbonylation reactions using Mo(CO)6 by ball milling (yields after column chromatography; in parentheses, yields as determined by 1H NMR spectroscopy).
Scheme 4(a) Mechanochemical aminocarbonylation reactions and (b) sulfoximinocarbonylation of 1 a using Mo(CO)6 by ball milling. Yields after column chromatography.