Synthesis and study of chemically activated biradical precursors

<p> The design, synthesis and study of molecules which produce 1,4-biradical intermediates upon thermal or chemical activation is described. The preparation and cyclization behavior of (Z)-1,2,4-heptatrien-6-yne and compounds that contain the (Z)-allene-ene-yne functional group or that form it...

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Main Author: Dragovich, Peter S.
Format: Others
Language:en
Published: 1993
Online Access:https://thesis.library.caltech.edu/7271/1/Dragovich_ps_1993.pdf
Dragovich, Peter S. (1993) Synthesis and study of chemically activated biradical precursors. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/p2kc-rn13. https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600 <https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600>
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spelling ndltd-CALTECH-oai-thesis.library.caltech.edu-72712021-04-20T05:01:38Z https://thesis.library.caltech.edu/7271/ Synthesis and study of chemically activated biradical precursors Dragovich, Peter S. <p> The design, synthesis and study of molecules which produce 1,4-biradical intermediates upon thermal or chemical activation is described. The preparation and cyclization behavior of (Z)-1,2,4-heptatrien-6-yne and compounds that contain the (Z)-allene-ene-yne functional group or that form it in a serial reaction sequence are discussed. Evidence is presented that supports the thermal transformation of the (Z)-allene-ene-yne functional group to an α,3-dehydrotoluene intermediate that is best described as a singlet σ,π-biradical with substantial polar character. The partitioning between polar and free radical reaction pathways in these systems is shown to be influenced by biradical substitution and by the reaction medium in which the intermediate is generated. These results are discussed with reference to electrocyclization reactions occurring within the enediyne family of natural antitumor agents.</p> <p> The design, synthesis and reactivity of a system that produces a strained (Z)-enediyne moiety via the reductive activation of an anthraquinone-diacetylene conjugate in water with a flavin-based enzymatic system is described. The (Z)-enediyne thus produced is shown to undergo thermal rearrangement to form a naphthofuran product via a 1,4-dehydrobenzene biradical intermediate.</p> <p> The preparation of a molecule which forms a substituted 1,6-didehydro[10]annulene intermediate by nucleophilic addition of thiol is described. This intermediate is not observed, but rearranges to form two isomeric 1,5-dehydronaphthalene biradicals as evidenced by the isolation of the corresponding aromatized products.</p> 1993 Thesis NonPeerReviewed application/pdf en other https://thesis.library.caltech.edu/7271/1/Dragovich_ps_1993.pdf Dragovich, Peter S. (1993) Synthesis and study of chemically activated biradical precursors. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/p2kc-rn13. https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600 <https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600> https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600 CaltechTHESIS:11142012-144010600 10.7907/p2kc-rn13
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description <p> The design, synthesis and study of molecules which produce 1,4-biradical intermediates upon thermal or chemical activation is described. The preparation and cyclization behavior of (Z)-1,2,4-heptatrien-6-yne and compounds that contain the (Z)-allene-ene-yne functional group or that form it in a serial reaction sequence are discussed. Evidence is presented that supports the thermal transformation of the (Z)-allene-ene-yne functional group to an α,3-dehydrotoluene intermediate that is best described as a singlet σ,π-biradical with substantial polar character. The partitioning between polar and free radical reaction pathways in these systems is shown to be influenced by biradical substitution and by the reaction medium in which the intermediate is generated. These results are discussed with reference to electrocyclization reactions occurring within the enediyne family of natural antitumor agents.</p> <p> The design, synthesis and reactivity of a system that produces a strained (Z)-enediyne moiety via the reductive activation of an anthraquinone-diacetylene conjugate in water with a flavin-based enzymatic system is described. The (Z)-enediyne thus produced is shown to undergo thermal rearrangement to form a naphthofuran product via a 1,4-dehydrobenzene biradical intermediate.</p> <p> The preparation of a molecule which forms a substituted 1,6-didehydro[10]annulene intermediate by nucleophilic addition of thiol is described. This intermediate is not observed, but rearranges to form two isomeric 1,5-dehydronaphthalene biradicals as evidenced by the isolation of the corresponding aromatized products.</p>
author Dragovich, Peter S.
spellingShingle Dragovich, Peter S.
Synthesis and study of chemically activated biradical precursors
author_facet Dragovich, Peter S.
author_sort Dragovich, Peter S.
title Synthesis and study of chemically activated biradical precursors
title_short Synthesis and study of chemically activated biradical precursors
title_full Synthesis and study of chemically activated biradical precursors
title_fullStr Synthesis and study of chemically activated biradical precursors
title_full_unstemmed Synthesis and study of chemically activated biradical precursors
title_sort synthesis and study of chemically activated biradical precursors
publishDate 1993
url https://thesis.library.caltech.edu/7271/1/Dragovich_ps_1993.pdf
Dragovich, Peter S. (1993) Synthesis and study of chemically activated biradical precursors. Dissertation (Ph.D.), California Institute of Technology. doi:10.7907/p2kc-rn13. https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600 <https://resolver.caltech.edu/CaltechTHESIS:11142012-144010600>
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