Nieman Reed, Aquino Adelia J A, Lischka Hans
Department of Chemistry and Biochemistry, Texas Tech University, Lubbock, Texas 79409-1061, USA.
J Chem Phys. 2020 Jan 31;152(4):044306. doi: 10.1063/1.5139411.
Benchmark ab initio calculations have been performed for poly(p-phenylenevinylene) (PPV) dimers, a paradigmatic material for studying excitation energy transfer mechanisms. Second-order Møller-Plesset perturbation theory was utilized with the scaled opposite spin approach (SOS-MP2) and correlation consistent basis sets to determine the geometric properties and interaction energies in the ground state. Vertical excitations and optimized structures for the S state were computed using the SOS second-order algebraic diagrammatic construction method. For the ground state properties, extrapolation to the complete basis set (CBS) limit and correction for the basis set superposition error (BSSE) were performed. While all results computed with different basis sets and considering BSSE correction or not agreed at the CBS limit, a strong bias was observed either using augmented basis sets or BSSE corrections, proving that these approaches are not advisable for calculating intermolecular distances and interaction energies with smaller basis sets. The lower states for vertical excitations were largely local excitons where the hole/electron pair was confined to single chains. For higher excited states, interchain charge transfer (CT) states were also observed. Geometry optimization of the S state led to significant reductions in the intermolecular distances and energetic stabilization, with Stokes shifts between 1.4 eV and 0.9 eV (with increasing chain length), and significant CT values between 0.5e and 0.4e.
对聚对苯撑乙烯(PPV)二聚体进行了基准从头算计算,PPV二聚体是研究激发能量转移机制的典型材料。采用二阶莫勒-普列斯特定则微扰理论结合标度相反自旋方法(SOS-MP2)和相关一致基组来确定基态的几何性质和相互作用能。使用SOS二阶代数图示构造方法计算S态的垂直激发和优化结构。对于基态性质,进行了外推到完备基组(CBS)极限以及基组重叠误差(BSSE)校正。虽然在CBS极限下,使用不同基组计算的所有结果,无论是否考虑BSSE校正都一致,但使用增广基组或BSSE校正时都观察到了强烈的偏差,这证明这些方法对于使用较小基组计算分子间距离和相互作用能并不可取。垂直激发的较低态主要是局域激子,其中空穴/电子对局限于单链。对于较高激发态,还观察到了链间电荷转移(CT)态。S态的几何优化导致分子间距离显著减小和能量稳定,斯托克斯位移在1.4 eV至0.9 eV之间(随链长增加),并且CT值在0.5e至0.4e之间显著。