Patra Ramen, Das Mousumi
Department of Chemical Sciences and Centre for Advanced Functional Materials, Indian Institute of Science Education and Research (IISER), Kolkata, Mohanpur 741246, India.
J Phys Chem A. 2024 Sep 5;128(35):7375-7383. doi: 10.1021/acs.jpca.4c03346. Epub 2024 Aug 21.
The electronic structure of boron (B)-nitrogen (N)-substituted pyrene molecules is the center of attraction in designing an efficient intermolecular singlet fission (x-SF) material. Thermodynamic energy criteria required for x-SF are obtained by captodative substitution with B and N in pristine pyrene to increase the lowest singlet-triplet energy gap. We computed low-lying excited states of BN-embedded pyrene molecules by exactly solving the Pariser-Parr-Pople (PPP) model Hamiltonian and compared these results with the TDDFT and EOM-CCSD values. Exact diagonalization of the PPP model Hamiltonian suggests that pristine pyrene, which is endothermic for x-SF, becomes isoergic with certain (BN) substitution. The low-lying excited state energies calculated using the model Hamiltonian match very well with experimental values over EOM-CCSD and TDDFT. Moreover, the low value of the spin-orbit coupling constant calculated for BN-substituted pyrene strengthens its applicability as an SF material.
硼(B)-氮(N)取代的芘分子的电子结构是设计高效分子间单线态裂变(x-SF)材料的核心吸引力所在。通过在原始芘中用B和N进行俘精酸酐取代以增加最低单线态-三线态能隙,可获得x-SF所需的热力学能量标准。我们通过精确求解帕里泽-帕尔-波普尔(PPP)模型哈密顿量来计算嵌入BN的芘分子的低激发态,并将这些结果与TDDFT和EOM-CCSD值进行比较。PPP模型哈密顿量的精确对角化表明,对x-SF吸热的原始芘在进行某些(BN)取代后变为等能态。使用模型哈密顿量计算得到的低激发态能量与EOM-CCSD和TDDFT的实验值非常吻合。此外,为BN取代的芘计算出的自旋-轨道耦合常数较低,这增强了其作为SF材料的适用性。