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光合反应中心模拟:自组装共面锌酞菁二聚体 - 富勒烯共轭物中低重组能驱动的电荷稳定化

Photosynthetic reaction center mimicry: low reorganization energy driven charge stabilization in self-assembled cofacial zinc phthalocyanine dimer-fullerene conjugate.

作者信息

D'Souza Francis, Maligaspe Eranda, Ohkubo Kei, Zandler Melvin E, Subbaiyan Navaneetha K, Fukuzumi Shunichi

机构信息

Department of Chemistry, Wichita State University, 1845 Fairmount, Wichita, Kansas 67260-0051, USA.

出版信息

J Am Chem Soc. 2009 Jul 1;131(25):8787-97. doi: 10.1021/ja903467w.

Abstract

By employing well-defined self-assembly methods, a biomimetic bacterial photosynthetic reaction center complex has been constructed, and photoinduced electron transfer originating in this supramolecular donor-acceptor conjugate has been investigated. The biomimetic model of the bacterial "special pair" donor, a cofacial zinc phthalocyanine dimer, was formed via potassium ion induced dimerization of 4,5,4',5',4'', 5'',4''',5'''-zinc tetrakis(1,4,7,10,13-pentaoxatridecamethylene)phthalocyanine. The dimer was subsequently self-assembled with functionalized fullerenes via "two-point" binding involving axial coordination and crown ether-alkyl ammonium cation complexation to form the donor-acceptor pair, mimicking the noncovalently bound entities of the bacterial photosynthetic reaction center. The adopted self-assembly methodology yielded a supramolecular complex of higher stability with defined geometry and orientation as revealed by the binding constant and computational optimized structure. Unlike the previously reported porphyrin analog, the present phthalocyanine macrocycle based model system exhibited superior electron-transfer properties including formation of a long-lived charge-separated state, a key step of the photosynthetic light energy conversion process. Detailed analysis of the kinetic data in light of the Marcus theory of electron transfer revealed that small reorganization energy of the relatively rigid phthalocyanine is primarily responsible for slower charge-recombination process. The importance of the cofacial dimer in stabilizing the charge-separated state is borne out in the present all-supramolecular "reaction center" donor-acceptor mimic.

摘要

通过采用明确的自组装方法,构建了一种仿生细菌光合反应中心复合物,并对源自这种超分子供体-受体共轭物的光诱导电子转移进行了研究。细菌“特殊对”供体的仿生模型,即一种共面锌酞菁二聚体,是通过4,5,4',5',4'',5'',4''',5'''-锌四(1,4,7,10,13-五氧杂十三烷)酞菁的钾离子诱导二聚化形成的。随后,该二聚体通过涉及轴向配位和冠醚-烷基铵阳离子络合的“两点”结合与功能化富勒烯自组装,形成供体-受体对,模拟细菌光合反应中心的非共价结合实体。所采用的自组装方法产生了一种具有更高稳定性的超分子复合物,其几何形状和取向明确,结合常数和计算优化结构表明了这一点。与先前报道的卟啉类似物不同,目前基于酞菁大环的模型系统表现出优异的电子转移特性,包括形成长寿命电荷分离态,这是光合光能转换过程的关键步骤。根据马库斯电子转移理论对动力学数据进行详细分析表明,相对刚性的酞菁的小重组能是电荷复合过程较慢的主要原因。共面二聚体在稳定电荷分离态中的重要性在目前的全超分子“反应中心”供体-受体模拟物中得到了证实。

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