Chen Lin X, Shaw George B, Tiede David M, Zuo Xiaobing, Zapol Peter, Redfern Paul C, Curtiss Larry A, Sooksimuang Thanasat, Mandal Braja K
Chemistry Division and Materials Science Division, Argonne National Laboratory, Argonne, Illinois 60439, USA.
J Phys Chem B. 2005 Sep 8;109(35):16598-609. doi: 10.1021/jp051947w.
Recently synthesized zinc helicenocyanine (ZnHc), where four helicene groups are fused with a phthalocyanine (Pc) core through all-carbon linkages, exhibits an unusually strong tendency of forming soluble molecular aggregates in organic solvents. The aggregation results in a strong optical absorption across most of the visible region, which is drastically different from that of its monomer. The aggregation is suppressed by dissolving ZnHc in a liquid crystal, octylbiphenylcarbonitrile (OBCN), where the monomer ZnHc dominates and exhibits a typical optical absorption spectrum of monomeric zinc phthalocyanine, except red shift in both Q- and B- bands due to pi-conjugation expansion. This study correlates optical properties and excited state dynamics of ZnHc with intra- and intermolecular electronic interactions, using quantum mechanical calculations and ultrafast transient absorption spectroscopy. Structural details of the aggregates are revealed by small-angle X-ray scattering (SAXS) to be uniformly dimers with alkoxy chains wrapped around the core of a face-to-face dimer. The results suggest that while the peripheral helicene moieties in ZnHc are electronically coupled to the Pc core via expansion of the pi-conjugation of the macrocycle, the coupling is attenuated by the "lock washer" conformation of the nonplanar peripheral helicenes which prevents pi-conjugation throughout the entire macrocycle. The interplay between pi-conjugation expansion in the macrocyle plane and the pi-pi stacking out of the macrocyle plane produces a structure that facilitates the unique optical properties and self-regulated assembly into nanoscale structures in solution. These novel optical properties are explored for potential applications in various areas.
最近合成的锌螺旋菁(ZnHc),其中四个螺旋烯基团通过全碳键与酞菁(Pc)核融合,在有机溶剂中表现出异常强烈的形成可溶性分子聚集体的倾向。这种聚集导致在大部分可见光区域有强烈的光吸收,这与它的单体有很大不同。通过将ZnHc溶解在液晶辛基联苯腈(OBCN)中来抑制聚集,在其中单体ZnHc占主导,并且除了由于π共轭扩展导致Q带和B带都发生红移外,呈现出典型的单体锌酞菁的光吸收光谱。本研究使用量子力学计算和超快瞬态吸收光谱,将ZnHc的光学性质和激发态动力学与分子内和分子间的电子相互作用联系起来。通过小角X射线散射(SAXS)揭示聚集体的结构细节为均匀的二聚体,烷氧基链缠绕在面对面二聚体的核周围。结果表明,虽然ZnHc中的外围螺旋烯部分通过大环π共轭的扩展与Pc核电子耦合,但这种耦合因非平面外围螺旋烯的“锁紧垫圈”构象而减弱,该构象阻止了整个大环的π共轭。大环平面内的π共轭扩展与大环平面外的π-π堆积之间的相互作用产生了一种结构,这种结构有利于独特的光学性质以及在溶液中自调节组装成纳米级结构。这些新颖的光学性质被探索用于各个领域的潜在应用。