| Literature DB >> 28332743 |
Petrus F Kuijpers1, Martijn J Tiekink1, Willem B Breukelaar1, Daniël L J Broere1, Nicolaas P van Leest1, Jarl Ivar van der Vlugt1, Joost N H Reek1, Bas de Bruin1.
Abstract
Cobalt-porphyrin-catalysed intramolecular ring-closing C-H bond amination enables direct synthesis of variousEntities:
Keywords: C−H activation; cobalt porphyrin; nitrogen heterocycles; radical reactions; ring-closing reactions
Year: 2017 PMID: 28332743 PMCID: PMC5488222 DOI: 10.1002/chem.201700358
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236
Figure 1Comparison of previously reported catalysts and those used in the present study for intramolecular ring‐closing C−H bond amination taking (4‐azidobutyl)benzene as a benchmark.
Catalyst evaluation in intramolecular ring‐closing C−H bond amination of azide 5 a.[a]
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|---|---|---|---|---|---|
| Entry | Catalyst | Loading [mol %] | Conversion [%] | Yield [%] | TON |
| 1[d] | [Co(TPP)] | 1 | –[b] | –[b] | n.d.[c] |
| 2 | [Co(TPP)] | 1 | 24 | 17 | 17 |
| 3 | [Co(TPF20P)] | 1 | <5 | n.d.[c] | n.d.[c] |
| 4 | [Co(TMP)] | 1 | 38 | 36 | 35 |
| 5[e] | [Co(TMP)] | 1 | 39 | 32 | 30 |
| 6[f] | [Co(TMP)] | 1 | 30 | n.d.[c] | 30 |
| 7[g] | [Co(Salophen)] | 1 | –[b] | –[b] | n.d.[c] |
| 8 | AIBN | 4 | –[b] | –[b] | n.d.[c] |
| 9 | [Co(TMP)] | 2 | 57 | 54 | 27 |
| 10 | [Co(TMP)] | 4 | >95 | 89 | 21 |
[a] Conditions: Substrate 5 (0.3 mmol), catalyst (1–4 mol %), Boc2O (0.36 mmol) and solvent (3.0 mL) were mixed and reacted for 16 h at 100 °C. After the reaction only starting material and expected products were observed. Conversions are based on 1H NMR analysis of the ratio between starting materials and products. Yields are of isolated material. [b] No product was detected by 1H NMR. [c] Not determined. [d] No Boc2O was used in the reaction. [e] Benzene was used as the solvent. [f] 3 % v/v water was present in the solvent. [g] Salophen=N,N′′‐bis‐(3,5‐di‐tert‐butyl‐salicylidene)‐1,2‐phenylenediamine).
Figure 2Achiral cobalt(II) complexes used in this study: cobalt(II) tetraphenylporphyrin ([Co(TPP)], 1), cobalt(II) pentafluorophenylporphyrin ([Co(TPF20P)], 2), cobalt(II) tetramesitylporphyrin ([Co(TMP)], 3) and cobalt(II) salophen ([Co(salophen], 4).
Catalytic formation of oxazolidines and imidazolidines.[a]
| Entry | Substrate | Product | Yield [%] | TON |
|---|---|---|---|---|
| 1 |
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| 93 | 23 |
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| 2 |
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| 32 | 8 |
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| 3 |
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| 69[b] 67[c] | 17[b] 17[c] |
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| 4 |
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| 69[b] | 16[b] |
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| 5[b,c] 6[b,c] 7[b,c] 8[b,c] 9[b,c] 10[b,c] | R=Me, | R=Me, | 96 91 84 87 95 82 | 24 22 21 22 24 20 |
[a] Conditions: Substrate (0.3 mmol), Boc2O (1.2 equivalent), [Co(TMP)] (4 mol %), and toluene (3.0 mL) were added and reacted for 16 h at 100 °C. At the end of the reaction only starting material and products were observed. [b] 2.4 equiv of Boc2O were added. Yields are of isolated material. In entries 3 and 5–10, full conversion of starting material was always observed. The only observed side product was the corresponding azide with a Boc‐protected secondary nitrogen (compound 8 c and compounds S6‐S11, see the Supporting Information). [c] Commercially available [Co(TPP)] 1 was used as the catalyst.
Scheme 1Application of the [Co(por)]‐mediated intramolecular C−H bond‐amination ring‐closing protocol for the synthesis of alternative heterocycles 15 b–18 b.
Scheme 2Intermolecular kinetic isotope competition experiment between non‐deuterated (4‐azidobutyl)benzene substrate 5 a and its bis‐deuterated analogue ‐ 5 a (top) and intramolecular kinetic isotope competition experiment using mono‐deuterated substrate ‐5 a (bottom).
Scheme 3Proposed mechanism for [Co(por)]‐catalysed intramolecular C−H bond‐amination ring‐closing reaction of 5 a to 6 b and the corresponding DFT‐computed energies (BP86, def2‐TZVP, disp3).[a] Free energies (ΔG°373K in kcal mol−1), all energies (also TS1, TS2 and TS3) relative to A. [b] L=□=vacant site (5‐coordinate pathway). [c] L=5 c (6‐coordinate pathway).
Figure 3Spin‐density plot of intermediate C present in Scheme 3.
Figure 4Structure of (1S)‐(−)‐camphanic acid based chiral catalyst 19 used in the enantioselective ring‐closing C−H bond‐amination reaction of substrate 5 a with 4 mol% catalyst loading.