首页> 外文期刊>Science of advanced materials >Effects of Electron Withdrawing Groups on Transfer Integrals, Mobility, Electronic and Photo-Physical Properties of Naphtho[2,1-b:6,5-b ']Difuran Derivatives: A Theoretical Study
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Effects of Electron Withdrawing Groups on Transfer Integrals, Mobility, Electronic and Photo-Physical Properties of Naphtho[2,1-b:6,5-b ']Difuran Derivatives: A Theoretical Study

机译:电子吸收基团对萘并[2,1-b:6,5-b']二呋喃衍生物的转移积分,迁移率,电子和光物理性质的影响:理论研究

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摘要

New derivatives of naphtho[2,1-b:6,5-b']difuran (DPNDF) have been designed by attaching different electron withdrawing groups (EWGs) (including -COOH, -OCF3 and -CN). The molecular structures of all derivatives have been optimized at the ground (S-0) and first excited (S-1) states using density functional theory (DFT) and time-dependent density functional theory (TD-DFT), respectively. The highest occupied molecular orbitals (HOMOs), the lowest unoccupied molecular orbitals (LUMOs), photophysical properties, adiabatic/vertical electron affinity (EAa)/(EAv), adiabatic/vertical ionization potential (IPa)/(IPv) and hole/electron reorganization energies lambda(h)/lambda(e) have been investigated. Transfer integral, mobility and stability have also been calculated. Electron mobility as high as 5.148 cm(2) V-1 s(-1) has been obtained. Upon substituting the EWGs electron transfer integrals are boosted in newly designed derivatives. The balanced hole and electron reorganization energies, and the improved transfer integrals lead to enhanced mobility in the derivative with COOH groups. Thus the latter compound would be an efficient electron transfer material. Photo-stability of furan based materials is enhanced by introducing the EWGs at different positions.
机译:萘并[2,1-b:6,5-b']二呋喃(DPNDF)的新衍生物已通过连接不同的吸电子基团(EWG)(包括-COOH,-OCF3和-CN)进行了设计。分别使用密度泛函理论(DFT)和时变密度泛函理论(TD-DFT)分别优化了所有衍生物在基态(S-0)和第一激发态(S-1)的分子结构。最高占据分子轨道(HOMO),最低未占据分子轨道(LUMO),光物理性质,绝热/垂直电子亲和力(EAa)/(EAv),绝热/垂直电离电势(IPa)/(IPv)和空穴/电子已经研究了重组能量λ(h)/λ(e)。还计算了转移积分,迁移率和稳定性。已经获得了高达5.148 cm(2)V-1 s(-1)的电子迁移率。取代EWG时,新设计的导数会增强电子传递积分。平衡的空穴和电子重组能以及改进的转移积分导致具有COOH基团的衍生物的迁移率提高。因此,后一种化合物将是有效的电子转移材料。通过在不同位置引入EWG,可以提高基于呋喃的材料的光稳定性。

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