Departamento de Química , Universidad Técnica Federico Santa María , Av. Santa María 6400 Vitacura , 7660251 , Santiago , Chile.
J Phys Chem B. 2019 Nov 27;123(47):10044-10060. doi: 10.1021/acs.jpcb.9b07629. Epub 2019 Nov 15.
Numerous metalloporphyrin stacks have been synthesized and studied. Electronic interactions between constituent metalloporphyrins are able to determine the structures and properties of porphyrin arrays. In 2016, Co(II)-, Cu(II)-, Pt(II)-, and Zn(II)-porphyrins were shown to pack to form as well as . Porphyrin rings were found to strongly overlap with lateral shifts between ring centers. However, no binding energies and electronic structures of these stacks have been reported. We have performed first computational study of the dimers of Co(II)-, Cu(II)-, and Zn(II)-porphyrins, both in vacuum and in two implicit solvents. For all three stacks the configurations with strong overlap of the metalloporphyrin rings with lateral shifts between ring centers were found to be the global minimum structures, A for [ZnP] and A for [CuP] and [CoP]. Also, open-shell singlets with the same energy or close-lying in energy were found for [CuP] and [CoP]. The binding energies were calculated to be significant, from ca. -13 to -39 kcal/mol (gas phase, depending on the computational approach). The computational results showed quite good agreement with the experimental data. The dimers were found to be bound by strong bonding combinations of the monomer MOs which explained significant binding energies computed for the dimers. The shifted dimer configurations could be explained by the way how the monomer MOs preferably overlap.
已经合成并研究了许多金属卟啉堆积物。组成金属卟啉之间的电子相互作用能够确定卟啉阵列的结构和性质。2016 年,已经证明 Co(II)-、Cu(II)-、Pt(II)-和 Zn(II)-卟啉能够堆积形成[CuP]和[CoP]。发现卟啉环强烈重叠,并且环中心之间存在横向位移。然而,这些堆积物的结合能和电子结构尚未报道。我们已经对 Co(II)-、Cu(II)-和 Zn(II)-卟啉的二聚体进行了首次计算研究,分别在真空和两种隐式溶剂中进行了研究。对于所有三种堆积物,发现具有金属卟啉环强烈重叠和环中心之间横向位移的构型是全局最小结构,A 对于[ZnP]和 A 对于[CuP]和[CoP]。此外,对于[CuP]和[CoP],还发现了具有相同能量或能量相近的开壳 singlet。结合能的计算值非常显著,约为-13 至-39 kcal/mol(气相,取决于计算方法)。计算结果与实验数据相当吻合。二聚体通过单体 MOs 的强键合组合结合在一起,这解释了计算得到的二聚体的显著结合能。通过单体 MOs 优先重叠的方式,可以解释位移二聚体的构型。