| Literature DB >> 29784991 |
Peter J Canfield1,2,3, Iain M Blake2, Zheng-Li Cai2, Ian J Luck2, Elmars Krausz4, Rika Kobayashi1,5, Jeffrey R Reimers6,7, Maxwell J Crossley8.
Abstract
Isomerism is a fundamental chemical concept, reflecting the fact that the arrangement of atoms in a molecular entity has a profound influence on its chemical and physical properties. Here we describe a previously unclassified fundamental form of conformational isomerism through four resolved stereoisomers of a transoid (BF)O(BF)-quinoxalinoporphyrin. These comprise two pairs of enantiomers that manifest structural relationships not describable within existing IUPAC nomenclature and terminology. They undergo thermal diastereomeric interconversion over a barrier of 104 ± 2 kJ mol-1, which we term 'akamptisomerization'. Feasible interconversion processes between conceivable synthesis products and reaction intermediates were mapped out by density functional theory calculations, identifying bond-angle inversion (BAI) at a singly bonded atom as the reaction mechanism. We also introduce the necessary BAI stereodescriptors parvo and amplo. Based on an extended polytope formalism of molecular structure and stereoisomerization, BAI-driven akamptisomerization is shown to be the final fundamental type of conformational isomerization.Entities:
Year: 2018 PMID: 29784991 DOI: 10.1038/s41557-018-0043-6
Source DB: PubMed Journal: Nat Chem ISSN: 1755-4330 Impact factor: 24.427