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Singlet and Triplet Excited State Energy Orderingin Cyclopenta-Fused Polycyclic Aromatic Hydrocarbons (CP-PAHs) Suitablefor Energy Harvesting: An Exact Model and TDDFT Study

机译:单重态和三重态激发态能量订购适用于环戊烷多环芳烃(CP-PAHs)能量收集:精确模型和TDDFT研究

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摘要

We calculated the ground and low-lying excited states of cyclopenta-fused polycyclic aromatic hydrocarbons (CP-PAHs) using exact diagonalization in full configuration interaction (CI) within the model Pariser–Parr–Pople Hamiltonian as well as a time-dependent density functional theory technique. The CP-PAHs include acenapthylene, isomers of pyracylene, cycloocta-pentalene, and three isomers of dicyclo-pentacyclo-octenes (DCPCO). We used the inherent symmetries of these systems to calculate the energy ordering of the lowest singlet (S1) and lowest triplet excited (T1) states with respect to the ground state (S0). The calculation shows that the lowest dipole allowed singlet absorption varies from 0.43 to 1.42 eV for most of these systems. Such an optical absorption range is very promising in harvesting solar radiation ranging from the visible to near-infrared region improving the efficiency of photovoltaic device application. The calculated optical gaps for pyracylene, acenapthylene, and two isomers of DCPCO are in very good agreement with experimental resultsreported in the literature. The calculated S1–T1 energy gaps (ΔST) in cycloocta-pentaleneand in the DCPCO isomers are very small ranging from 0.01 to 0.2 eV,which is highly desirable in improving their electroluminescence efficiencyin light-emitting device applications.
机译:我们在模型Parier–Parr–Pople哈密顿量模型中使用完全配置相互作用(CI)中的精确对角化作用,计算了环戊多稠合多环芳烃(CP-PAHs)的基态和低位激发态理论技巧。 CP-PAH包括a庚烯,pyr并烯,环辛-戊烯的异构体和二环-戊环辛烯(DCPCO)的三种异构体。我们使用这些系统的固有对称性来计算相对于基态(S0)的最低单重态(S1)和最低三重态激发态(T1)的能量排序。计算表明,对于大多数这些系统,最低的偶极子允许单重态吸收在0.43至1.42 eV之间变化。这样的光吸收范围在收集从可见光区域到近红外区域的太阳辐射中非常有希望,从而提高了光伏器件应用的效率。 pyr啶,ac庚烯和DCPCO的两个异构体的计算光学间隙与实验结果非常吻合文献报道。计算出的环辛-戊烯的S1-T1能隙(ΔST)在DCPCO中,异构体很小,范围为0.01至0.2 eV,在提高其电致发光效率方面非常需要在发光器件中的应用。

著录项

  • 期刊名称 ACS Omega
  • 作者

    Sumit Naskar; Mousumi Das; *;

  • 作者单位
  • 年(卷),期 2017(2),5
  • 年度 2017
  • 页码 1795–1803
  • 总页数 9
  • 原文格式 PDF
  • 正文语种
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