Ito S, Wehmeier M, Brand J D, Kübel C, Epsch R, Rabe J P, Müllen K
Max-Planck-Institute for Polymer Research, Mainz, Germany.
Chemistry. 2000 Dec 1;6(23):4327-42. doi: 10.1002/1521-3765(20001201)6:23<4327::aid-chem4327>3.0.co;2-7.
Monolayers of hexa-alkyl substituted derivatives of hexa-peri-hexabenzocoronene (HBC) 1b have previously been investigated by scanning tunneling microscopy (STM) and scanning tunneling spectroscopy (STS). It is expected that different functional groups (electron donating or withdrawing) connected to the aromatic core will influence the packing pattern and possibly the current-voltage characteristics as well. In order to provide suitable model systems, a new synthetic approach to synthesize functionalized HBC derivatives has been developed. This was accomplished by [4 + 2]-cycloaddition of suitably bromo-substituted diphenylacetylenes and 2,3,4,5-tetraarylcyclopenta-2,4-dien-1-ones followed by an oxidative cyclodehydrogenation with iron(III) chloride/nitromethane. Using this strategy three different substitution patterns were synthesized: 2-bromo-5,8,11.14,17-pentadodecylhexa-pecri-hexabenzocoronene (2a), 2,5-dibromo-8,11,14,17-pentadodecylhexa-peri-hexabenzocoronene (2b), and 2,11-dibromo5,8,14,17-pentadodecylhexa-peri-hexa-benzocoronene (2c). These bromo-substituted HBC derivatives were subjected to palladium catalyzed coupling reactions to give donor (alkoxy, amino) as well as acceptor (ester, cyano) substituted derivatives. The self-assembly of these new HBC derivatives was studied in the bulk as well as at an interface. DSC, optical microscopy, and X-ray diffraction revealed the existence of columnar mesophases. The bulk structure in the mesophase is largely insensitive to changes of the substitution pattern; however, in situ scanning tunneling microscopy at the solid-fluid interface between an organic solution of the HBC derivative and highly oriented pyrolytic graphite reveals different packing patterns of the first adsorbed monolayer.
六并六苯并蔻(HBC)1b的六烷基取代衍生物的单分子层此前已通过扫描隧道显微镜(STM)和扫描隧道光谱(STS)进行了研究。预计连接到芳香核的不同官能团(供电子或吸电子)将影响堆积模式,并可能也会影响电流-电压特性。为了提供合适的模型系统,已开发出一种合成功能化HBC衍生物的新合成方法。这是通过适当的溴代二苯乙炔与2,3,4,5-四芳基环戊-2,4-二烯-1-酮的[4 + 2]环加成反应,然后用氯化铁(III)/硝基甲烷进行氧化环脱氢反应来实现的。使用该策略合成了三种不同的取代模式:2-溴-5,8,11,14,17-五二十二烷基六并六苯并蔻(2a)、2,5-二溴-8,11,14,17-五二十二烷基六并六苯并蔻(2b)和2,11-二溴-5,8,14,17-五二十二烷基六并六苯并蔻(2c)。这些溴代HBC衍生物进行钯催化的偶联反应,得到供体(烷氧基、氨基)以及受体(酯、氰基)取代的衍生物。研究了这些新HBC衍生物在本体以及界面处的自组装。差示扫描量热法(DSC)、光学显微镜和X射线衍射揭示了柱状中间相的存在。中间相中的本体结构在很大程度上对取代模式的变化不敏感;然而,在HBC衍生物的有机溶液与高度取向的热解石墨之间的固-液界面处进行的原位扫描隧道显微镜显示了第一个吸附单分子层的不同堆积模式。