| Literature DB >> 31166628 |
Iciar Uriarte1,2, Felipe Reviriego3, Camilla Calabrese1,2, José Elguero4, Zbigniew Kisiel5, Ibon Alkorta4, Emilio J Cocinero1,2.
Abstract
Bond length alternation is a chemical phenomenon in benzene rings fused to other rings, which has been mainly predicted theoretically. Its physical origin is still not clear and has generated discussion. Here, by using a strategy that combines microwave spectroscopy, custom-made synthesis and high-level ab initio calculations, we demonstrate that this phenomenon is clearly observed in the prototype indazole molecule isolated in the gas phase. The 1H-indazole conformer was detected by rotational spectroscopy, and its 17 isotopologues resulting from single and double heavy atom substitution (13 C and 15 N) were also unambiguously observed. Several experimental structures were determined and, in particular, the most useful semi-experimental equilibrium structure (re SE ), allowed determination of the heavy atom bond lengths to milli-Ångstrom precision. The experimentally determined bond length alternation is estimated to correspond to 60:40 contributions from the two resonant forms of 1H-indazole.Entities:
Keywords: ab initio calculations; bond alternation; conformational analysis; rotational spectroscopy; structure elucidation
Year: 2019 PMID: 31166628 DOI: 10.1002/chem.201901666
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236