| Literature DB >> 32338388 |
Max M Martin1, Frank Hampel1, Norbert Jux1.
Abstract
A synthetic route towards a novel hexabenzocoronene-<span class="Chemical">based helical nanographene motif was developed. A hexaphenylbenzene precursor was therefore designed, which cannot undergo, due to steric restrictions, a complete planarization reaction. This precursor was transformed under oxidative cyclodehydrogenation conditions to a π-extended [5]helicene, which was fully characterized including X-ray diffraction analysis.Entities:
Keywords: carbon allotrope; helicene; hexabenzocoronene; nanographene; polycyclic aromatic hydrocarbons
Year: 2020 PMID: 32338388 PMCID: PMC7496628 DOI: 10.1002/chem.202001471
Source DB: PubMed Journal: Chemistry ISSN: 0947-6539 Impact factor: 5.236
Scheme 1Synthesis of HBC‐based [5]helicene 7. a) Zn, TiCl4, THF, 70 °C, 22 h; b) Br2, CHCl3, rt, 30 min; c) KOtBu, THF, 0 °C, 20 min; d) Ph2O, 260 °C in microwave reactor, 12 h; e) FeCl3, CH3NO2, CH2Cl2, 0 °C, 100 min.
Figure 1a) Crystal structure of HBC‐based [5]helicene 7. Structure is depicted as ORTEP model with thermal ellipsoids drawn at a 50 % probability level; b) torsion angles and bond lengths of the inner helix; c) determination of the interplanar angle; d), e) packing motif; hydrogen atoms, tert‐butyl groups and solvent molecules are omitted for clarity. Helicenes with the same chirality are drawn in the same color. CCDC: 1990061; see Experimental Section for details.
Figure 2a) UV/Vis absorption spectra of HBC‐based [5]helicene 7 and reference compound hexa‐tert‐butyl‐HBC34 in CH2Cl2; b) normalized steady state fluorescence emission spectra upon irradiation of the absorption maximum.