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- W2005376562 abstract "To enable the design of efficient organic electroluminescence (OLED) devices with desirable charge carrier transport properties, the mobilities of hole and electron in a series of compounds were studied computationally based on the Marcus electron transfer theory. MO calculations were performed, using the DFT B3LYP/6-31G* method in the Gaussian 98 program suite, on the following compounds: biphenyl (Bp), 4,4‘-biphenyldiamine (BA), triphenylamine (TPA), tri-p-tolylamine (TTA), 4-biphenylphenyl-m-tolylamine (BPTA), 4,4‘-bis(phenyl-m-tolylamino)biphenyl (TPD), naphthalene (Np), 1-naphthyldiphenylamine (NDPA), 1-biphenylnaphthylphenylamine (BNPA), and 4,4‘-bis(1-naphthylphenylamino)biphenyl (NPB). The geometries of these compounds in their neutral, cationic, and anionic states were optimized. The optimized geometries were then used to calculate the ionization potential, electron affinity, and reorganization energies. For compounds containing a biphenyl moiety (Bp, BA, BPTA, TPD, BNPA, and NPB), the inter-ring distance and torsional angle followed the trend neutral ≥ cationic ≥ anionic, except NPB in which these two parameters in anionic state were larger than the corresponding parameters in the cationic state because of a small contribution from the biphenyl moiety to its LUMO. Also, the ionization potentials follow the order Bp > BPTA ≈ BNPA > BA > NPB ≈ TPD. The electron affinities were calculated to range from −1.54 to −0.05 eV for all compounds except NPB which has a positive electron affinity 0.24 eV due to the dominant contribution of two naphthyl groups to LUMO. For most compounds, the reorganization energy λ+ for the hole transport is larger than λ- for the electron transport except NPB and BApy (constrained nitrogen pyramidal geometry). These exceptions were rationalized by the special structures for their anionic states. According to the magnitudes of λ+, compounds can be divided into two groups: λ+ ≥ 0.28 eV (BApl (constrained planar nitrogen geometry) ≈ Bp > TPD ≈ NPB) for compounds containing biphenyl group with or without two amino groups and λ+ ≤ 0.2 eV (TPA ≈ TTA <BPTA < BNPA ≈ NDPA) for compounds with single triarylamine group. According to the magnitudes of λ-, compounds can be divided into three groups: λ- ≥ 0.50 eV (TPD > Bp > BPTA) for compounds with a dominating biphenyl group in their LUMO, λ- ≤ 0.32 eV (NDPA > BNPA > Np > NPB) for compounds with a dominating naphthyl group in their LUMO, and the other compounds (TPA and TTA). From these results, λ+ is determined mainly by the moiety which contributes predominantly to its HOMO, whereas λ- is determined mainly by the moiety which contributes predominantly to its LUMO. Therefore, by controlling the major contributors to the HOMO and LUMO, and by incorporating substituents to fine-tune the energy levels of these frontier orbitals (HOMO and LUMO), a systematic design of materials for OLED with desirable charge carrier transport properties should be feasible." @default.
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- W2005376562 date "2003-06-11" @default.
- W2005376562 modified "2023-10-10" @default.
- W2005376562 title "Reorganization Energies in the Transports of Holes and Electrons in Organic Amines in Organic Electroluminescence Studied by Density Functional Theory" @default.
- W2005376562 cites W1969846115 @default.
- W2005376562 cites W1971845317 @default.
- W2005376562 cites W1974128181 @default.
- W2005376562 cites W1977488080 @default.
- W2005376562 cites W1979579775 @default.
- W2005376562 cites W1980109154 @default.
- W2005376562 cites W1984547537 @default.
- W2005376562 cites W1985884058 @default.
- W2005376562 cites W1991736812 @default.
- W2005376562 cites W1994653827 @default.
- W2005376562 cites W1996878747 @default.
- W2005376562 cites W1997199722 @default.
- W2005376562 cites W1999180648 @default.
- W2005376562 cites W2000114161 @default.
- W2005376562 cites W2000321825 @default.
- W2005376562 cites W2001270915 @default.
- W2005376562 cites W2008631597 @default.
- W2005376562 cites W2010790627 @default.
- W2005376562 cites W2014892316 @default.
- W2005376562 cites W2020507707 @default.
- W2005376562 cites W2021864270 @default.
- W2005376562 cites W2022205840 @default.
- W2005376562 cites W2023271753 @default.
- W2005376562 cites W2023814804 @default.
- W2005376562 cites W2025010133 @default.
- W2005376562 cites W2027649019 @default.
- W2005376562 cites W2031472982 @default.
- W2005376562 cites W2031904472 @default.
- W2005376562 cites W2050507497 @default.
- W2005376562 cites W2052258194 @default.
- W2005376562 cites W2058363175 @default.
- W2005376562 cites W2059988072 @default.
- W2005376562 cites W2061352573 @default.
- W2005376562 cites W2063042481 @default.
- W2005376562 cites W2064925385 @default.
- W2005376562 cites W2065258484 @default.
- W2005376562 cites W2066248976 @default.
- W2005376562 cites W2071315229 @default.
- W2005376562 cites W2074881069 @default.
- W2005376562 cites W2075662351 @default.
- W2005376562 cites W2076324625 @default.
- W2005376562 cites W2076826013 @default.
- W2005376562 cites W2077188122 @default.
- W2005376562 cites W2077965852 @default.
- W2005376562 cites W2078177804 @default.
- W2005376562 cites W2081239469 @default.
- W2005376562 cites W2085386757 @default.
- W2005376562 cites W2086507531 @default.
- W2005376562 cites W2086957099 @default.
- W2005376562 cites W2094505911 @default.
- W2005376562 cites W2094642658 @default.
- W2005376562 cites W2096351354 @default.
- W2005376562 cites W2113274671 @default.
- W2005376562 cites W2120436453 @default.
- W2005376562 cites W2123592072 @default.
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- W2005376562 cites W2332041736 @default.
- W2005376562 cites W2394947684 @default.
- W2005376562 cites W2950040290 @default.
- W2005376562 doi "https://doi.org/10.1021/jp0304529" @default.
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