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ELECTRONIC STRUCTURE OF PYRIDINE-BASED POLYMERS

机译:吡啶基聚合物的电子结构

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We present the results of semiemiprical quantum chemical calculations on oligomers of poly(p-pyridyl vinylene) (PPyV) and poly(p-pyridine) (PPy). The presence of a nitrogen heteroatom in the conjugated backbone of these polymers presents a potentially severe breaking of both spatial and charge-conjugation symmetry (CCS), and the addition of nonbonding (n) orbitals has potentially major effects on the photophysics of these systems. Geometries are optimized at the PM3 Hartree-Fock level for neutral, singly charged and doubly charged oligomers. We find that the geometric distortions associated with polaron formation are centered on the vinylene linkages in PPyV-based systems and on the interring bonds in the PPy-based systems. We discuss the electronic structure at the PM3 level applying configuration interaction between singly excited states (SCI), and we demonstrate that the lowest-lying (n-->pi*) states of the ideal polymer chain are well above the lowest (pi-->pi*) states, leading to strong fluorescence in these systems. Nonplanarity, however, leads to substantial mixing of the (pi-->pi*) and (n-->pi*) manifolds, thereby altering this conclusion. We calculate absorption spectra for neutral, singly charged (polaron), doubly charged (bipolaron), and triplet-state oligomers using the intermediate neglect of differential overlap/single-excitation configuration interaction (INDO/SCI) technique. For PPyV, comparison of oligomers with differing spatial symmetry allows the isolation of the effects of CCS breaking. All calculated spectra are in good agreement with experimental results and indicate that the symmetry breaking due to the nitrogen heteroatom is weak. In particular, the polaron induces a two-peak in-gap feature into the absorption spectrum and the bipolaron a single-peak feature, as is seen in the analogous all-hydrocarbon polymers. (C) 1996 American Institute of Physics. [References: 35]
机译:我们介绍了聚(对-吡啶基亚乙烯基)(PPyV)和聚(对-吡啶)(PPy)的低聚物的半原子量子化学计算的结果。在这些聚合物的共轭主链中存在氮杂原子可能会严重破坏空间和电荷共轭对称性(CCS),并且添加非键合(n)轨道可能会对这些系统的光物理产生重大影响。在PM3 Hartree-Fock级别对几何形状进行了优化,适用于中性,单电荷和双电荷的低聚物。我们发现,与极化子形成相关的几何畸变集中在基于PPyV的系统中的亚乙烯基键和基于PPyV的系统中的环键。我们讨论了在单激发态(SCI)之间的构型相互作用在PM3级别的电子结构,并且我们证明了理想聚合物链的最低价(n-> pi *)状态远高于最低价(pi- -> pi *)状态,导致这些系统中的强荧光。然而,非平面性导致(pi-> pi *)和(n-> pi *)流形的大量混合,从而改变了这一结论。我们使用差分重叠/单激发配置相互作用(INDO / SCI)技术的中间忽略,计算中性,单电荷(极化子),双电荷(双极化子)和三重态低聚物的吸收光谱。对于PPyV,比较具有不同空间对称性的低聚物可以隔离CCS断裂的影响。所有计算的光谱与实验结果非常吻合,表明由于氮杂原子而引起的对称性破坏很弱。特别地,如在类似的全烃聚合物中所见,极化子在吸收光谱中诱导了两个峰的间隙内特征,而双极化子在其诱导了单峰特征。 (C)1996年美国物理研究所。 [参考:35]

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