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ScN@I-C 富勒烯与无金属和锌酞菁耦合的基态和电荷转移激发态的 DFT 分析。

A DFT analysis of the ground and charge-transfer excited states of ScN@I-C fullerene coupled with metal-free and zinc-phthalocyanine.

机构信息

Computational Science Program, The University of Texas at El Paso, El Paso, Texas 79968, USA.

出版信息

Phys Chem Chem Phys. 2018 Oct 17;20(40):25841-25848. doi: 10.1039/c8cp03849j.

DOI:10.1039/c8cp03849j
PMID:30288541
Abstract

Endohedral metallofullerenes and phthalocyanine derivatives are recognized as excellent active materials in organic photovoltaics (OPVs). The tri-metallic nitride endohedral C80 fullerenes have greater absorption coefficients in the visible region and electron-accepting abilities similar to C60, which can allow for higher efficiencies in OPV devices. In this work, we have investigated the ground and charge transfer excited states of two co-facial donor-acceptor (D-A) molecular conjugates formed by the non-covalent coupling of trimetallic nitride endohedral fullerene (Sc3N@Ih-C80) with metal-free (H2Pc) and zinc-phthalocyanine (ZnPc) chromophores using DFT calculations. The charge transfer (CT) excitation energies are calculated using the perturbative delta-SCF method that enforces orthogonality between the ground and excited states. The binding energies calculated using the PBE and DFT-D3 methods indicate that the dispersion effects play an important role in the stabilization of these complexes. The ground state dipole moment of the Sc3N@C80-H2Pc dyad is much larger than that of Sc3N@C80-ZnPc, but this is reversed in the excited state where the dipole moment of Sc3N@C80-ZnPc increases significantly. The lowest few excitation energies in the gas phase for the two complexes are very close, in the range of 1.51-2.66 eV for Sc3N@C80-ZnPc and 1.51-2.71 eV for the Sc3N@C80-H2Pc complex. However, the lower ionization potential and lower exciton binding energy make the Sc3N@C80-ZnPc dyad a better candidate for OPVs as compared to the Sc3N@C80-H2Pc dyad.

摘要

内包金属富勒烯和酞菁衍生物被认为是有机光伏(OPV)中优秀的活性材料。三金属氮化物内包 C80 富勒烯在可见光区具有更大的吸收系数和类似于 C60 的电子接受能力,这可以使 OPV 器件的效率更高。在这项工作中,我们使用 DFT 计算研究了通过三金属氮化物内包 fullerene(Sc3N@Ih-C80)与无金属(H2Pc)和锌酞菁(ZnPc)发色团的非共价耦合形成的两个共面给体-受体(D-A)分子缀合物的基态和电荷转移激发态。使用微扰 δ-SCF 方法计算电荷转移(CT)激发能,该方法强制基态和激发态之间正交。使用 PBE 和 DFT-D3 方法计算的结合能表明,色散效应在这些配合物的稳定化中起着重要作用。Sc3N@C80-H2Pc 二聚体的基态偶极矩远大于 Sc3N@C80-ZnPc,但在激发态中,Sc3N@C80-ZnPc 的偶极矩显著增加,情况正好相反。两个配合物在气相中的最低几个激发能非常接近,Sc3N@C80-ZnPc 的范围为 1.51-2.66 eV,Sc3N@C80-H2Pc 配合物的范围为 1.51-2.71 eV。然而,较低的电离势和较低的激子结合能使 Sc3N@C80-ZnPc 二聚体成为比 Sc3N@C80-H2Pc 二聚体更适合 OPV 的候选物。

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