| Literature DB >> 21512596 |
Bryan Ringstrand1, Martin Oltmanns, Jeffrey A Batt, Aleksandra Jankowiak, Richard P Denicola, Piotr Kaszynski.
Abstract
The methodology to prepare 3-substituted 1,5-dibromopentanes I and their immediate precursors, which include 3-substituted 1,5-pentanediols VII or 4-substituted tetrahydropyrans VIII, is surveyed. Such dibromides I are important intermediates in the preparation of liquid crystalline derivatives containing 6-membered heterocyclic rings. Four dibromides 1a-1d containing simple alkyl and more complex fragments at the 3-position were prepared. 3-Propyl- and 3-pentyl-pentane-1,5-diol (2a,b) were prepared starting from either glutaconate or malonate diesters, while tetrahydropyrans 3c and 3d were obtained from tetrahydro-4H-pyran-4-one. The advantages and disadvantages of each route are discussed. Dibromides 1c and 1d were used to prepare sulfonium zwitterions 11c and 11d.Entities:
Keywords: 1,5-dibromopentanes; heterocycles; methodology; synthesis
Year: 2011 PMID: 21512596 PMCID: PMC3079112 DOI: 10.3762/bjoc.7.49
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Methods for synthesis of dibromides I and their use for preparation of 6-membered heterocycles.
Selected compounds reported in the literature.
| R | Literature | |
| Me, | [ | |
| Me, Et, | [ | |
| Me, Et, | [ | |
| Me, Et, | [ | |
| Me, | [ | |
Scheme 1General methods for preparation of diols VII.
Scheme 2General methods for preparation of tetrahydropyrans VIII.
Figure 2Structures of 1,5-dibromomopentanes 1a–1d.
Scheme 3Preparation of dibromides 1.
Scheme 4Preparation of diol 2a.
Scheme 5Preparation of diol 2b.
Scheme 6Preparation of tetrahydropyrans 3a–3c.
Scheme 7Preparation of tetrahydropyran 3d.
Scheme 8Preparation of methylenetetrahydropyrans 6.
Scheme 9Preparation of bromides 8 and 10.
Scheme 10Preparation of sulfonium derivatives 11.
Summary of dibromide 1 syntheses.
| Entry | Route (Method) | Number of steps | Overall yield (%) | |
| 1 | R = C3H7 ( | Malonate (1B) | 4 | 36 |
| 2 | R = C3H7 ( | Glutaconate (1C) | 3 | 68 |
| 3 | R = C3H7 ( | Pyranone (2B | 3 | 17 |
| 4 | R = C5H11 ( | Malonate (1B) | 4 | 38 |
| 5 | R = C5H11 ( | Pyranone (2B) | 3 | 33 |
| 6 | R = C5H11C6H10CH2CH2 ( | Pyranone (2B) | 3 | 20 |
| 7 | R = C3H7C6H4CH2CH2 ( | Pyranone (2B) | 4 | 18a |
| 8 | R = C5H11C6H4 | Glutaconate (1D) | 3 | 26b |
| 9 | R = C3H7–C10H21 | 4-COOH-pyran (2C) | 4 | 40c |
a4th step includes replacement of Cl in Ar–Cl with propyl by Pd-catalyzed coupling reaction. Excluding this step the yield for the dibromide would have been 17% over three steps. bIsolated as the ditosylate Ref. [19] cRef. [21].