6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität

Although the 2H-pyran-2-ones have been known for more than 100 years, their importance as versatile intermediates was not widely recognized before the sixties of this century. Until then, the C(6)-unsubstituted derivatives represented only a small minority due to their difficult accessibil...

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Main Authors: Vratislav Kvita, Walter Fischer
Format: Article
Language:deu
Published: Swiss Chemical Society 1992-12-01
Series:CHIMIA
Online Access:https://www.chimia.ch/chimia/article/view/2183
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author Vratislav Kvita
Walter Fischer
author_facet Vratislav Kvita
Walter Fischer
author_sort Vratislav Kvita
collection DOAJ
description Although the 2H-pyran-2-ones have been known for more than 100 years, their importance as versatile intermediates was not widely recognized before the sixties of this century. Until then, the C(6)-unsubstituted derivatives represented only a small minority due to their difficult accessibility. This review is dealing in the first part with the syntheses as well as, in the second part, with the reactivities of most of the C(6)-unsubstituted 2H-pyran-2-ones known so far. Of all reactions of the 2H-pyran-2-ones, the Diels-Alder cycloaddition is the most studied. Depending on conditions, the 2H-pyran-2-one ring can react as dienophile or as enophile. Furthermore, the subsequent elimination of CO2 from the formed bicyclolactone can frequently be influenced. This opens the opportunity of stereoselective syntheses. Recently, there were also reports on [4+3] and [3+2] cycloadditions. The photochemistry of the 2H-pyran-2-ones was studied intensely in the seventies of this century. Again, the enormous versatility of this ring system was demonstrated. Depending on conditions and substituent patterns, some ring contraction, ring opening, or dimerization by [4+4], [2+2], or [4+2] cycloaddition occurs. However, the highest variability in the reactivity of the C(6)-unsubstituted 2H-pyran-2-ones is demonstrated in their reactions with nucleophiles. These reactions, mostly accompanied by ring opening, give different, often otherwise difficultly accessible products depending on the conditions. The reactions with N-nucleophiles were the most productive so far, but also H-, O-, and C-nucleophiles gave interesting products. In recent years, much more became known about the synthesis and reactivity of C(6)-unsubstituted 2H-pyran-2-ones. This opened further possibilities of their applications in all fields of modern organic synthesis.
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spelling doaj.art-2c2138da063a4cf585787221a7d9cb0a2022-12-21T18:07:50ZdeuSwiss Chemical SocietyCHIMIA0009-42932673-24241992-12-0146126-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität Vratislav KvitaWalter Fischer Although the 2H-pyran-2-ones have been known for more than 100 years, their importance as versatile intermediates was not widely recognized before the sixties of this century. Until then, the C(6)-unsubstituted derivatives represented only a small minority due to their difficult accessibility. This review is dealing in the first part with the syntheses as well as, in the second part, with the reactivities of most of the C(6)-unsubstituted 2H-pyran-2-ones known so far. Of all reactions of the 2H-pyran-2-ones, the Diels-Alder cycloaddition is the most studied. Depending on conditions, the 2H-pyran-2-one ring can react as dienophile or as enophile. Furthermore, the subsequent elimination of CO2 from the formed bicyclolactone can frequently be influenced. This opens the opportunity of stereoselective syntheses. Recently, there were also reports on [4+3] and [3+2] cycloadditions. The photochemistry of the 2H-pyran-2-ones was studied intensely in the seventies of this century. Again, the enormous versatility of this ring system was demonstrated. Depending on conditions and substituent patterns, some ring contraction, ring opening, or dimerization by [4+4], [2+2], or [4+2] cycloaddition occurs. However, the highest variability in the reactivity of the C(6)-unsubstituted 2H-pyran-2-ones is demonstrated in their reactions with nucleophiles. These reactions, mostly accompanied by ring opening, give different, often otherwise difficultly accessible products depending on the conditions. The reactions with N-nucleophiles were the most productive so far, but also H-, O-, and C-nucleophiles gave interesting products. In recent years, much more became known about the synthesis and reactivity of C(6)-unsubstituted 2H-pyran-2-ones. This opened further possibilities of their applications in all fields of modern organic synthesis. https://www.chimia.ch/chimia/article/view/2183
spellingShingle Vratislav Kvita
Walter Fischer
6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität
CHIMIA
title 6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität
title_full 6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität
title_fullStr 6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität
title_full_unstemmed 6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität
title_short 6-Unsubstituierte 2H-Pyran-2-one Synthese und Reaktivität
title_sort 6 unsubstituierte 2h pyran 2 one synthese und reaktivitat
url https://www.chimia.ch/chimia/article/view/2183
work_keys_str_mv AT vratislavkvita 6unsubstituierte2hpyran2onesyntheseundreaktivitat
AT walterfischer 6unsubstituierte2hpyran2onesyntheseundreaktivitat