Perspective on carbazole-based organic compounds as emitters and hosts in TADF applications

被引:324
作者
Wex, Brigitte [1 ]
Kaafarani, Bilal R. [2 ]
机构
[1] Lebanese Amer Univ, Dept Nat Sci, Byblos, Lebanon
[2] Amer Univ Beirut, Dept Chem, Beirut 11072020, Lebanon
关键词
ACTIVATED DELAYED-FLUORESCENCE; LIGHT-EMITTING-DIODES; EXTERNAL QUANTUM EFFICIENCY; AGGREGATION-INDUCED EMISSION; SINGLET-TRIPLET GAP; LOW DRIVING VOLTAGE; HIGHLY EFFICIENT; MOLECULAR DESIGN; PHOSPHINE-OXIDE; PHOTOPHYSICAL PROPERTIES;
D O I
10.1039/c7tc02156a
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The field of organic light-emitting devices (OLEDs) has undergone a remarkable journey since its discovery by Tang and VanSlyke with an alternation of utilizing fluorescence and phosphorescence as the emitting vehicle. The latest generation of thermally activated delayed fluorescence (TADF) materials harvest triplet excited states back into the singlet manifold. This booming field has yielded a large array of new compounds as both emitters and hosts. This review is limited to TADF emitters utilizing at least one carbazole unit as a donor and organized according to the various acceptor building blocks such as cyanophenyl, pyridine, biphenyls, anthraquinone, phenyl(pyridine-2-yl) methanone, benzophenone, xanthon, sulfones, triazines, benzils, dicyanopyrazines, diazatriphenylene, and others. A survey of carbazole-containing host materials follows. Density functional theory (DFT) has carved out a significant role in allowing the theoretical prediction of ground state properties for materials applied in OLED technology. Time-dependent DFT extends the reach to model excited state properties important to rationalize the light-output in OLED technology. For TADF, two fundamental factors are of interest: significant separation of frontier molecular orbitals and minimal singlet-triplet energy gap (Delta E-ST). In this review, the utilization of DFT calculations to optimize geometries for the visualization of frontier molecular orbital separation was surveyed to find that the B3LYP/6-31G(d) level of theory is the overwhelmingly used approach. In addition, we review the more in-depth approaches to utilizing DFT and time-dependent DFT (TD-DFT) with optimized percentage Hartree-Fock (OHF) and long-range corrected hybrid functionals, tuning procedures and others in an attempt to best quantify the size of Delta E-ST as well as the nature of the triplet state as locally excited state (LE) and charge-transfer state (CT).
引用
收藏
页码:8622 / 8653
页数:32
相关论文
共 211 条
[61]   Triplet exciton confinement and unconfinement by adjacent hole-transport layers [J].
Goushi, K ;
Kwong, R ;
Brown, JJ ;
Sasabe, H ;
Adachi, C .
JOURNAL OF APPLIED PHYSICS, 2004, 95 (12) :7798-7802
[62]   Organic light-emitting diodes employing efficient reverse intersystem crossing for triplet-to-singlet state conversion [J].
Goushi, Kenichi ;
Yoshida, Kou ;
Sato, Keigo ;
Adachi, Chihaya .
NATURE PHOTONICS, 2012, 6 (04) :253-258
[63]   Structural changes accompanying intramolecular electron transfer: Focus on twisted intramolecular charge-transfer states and structures [J].
Grabowski, ZR ;
Rotkiewicz, K ;
Rettig, W .
CHEMICAL REVIEWS, 2003, 103 (10) :3899-4031
[64]   Effective electron displacements: A tool for time-dependent density functional theory computational spectroscopy [J].
Guido, Ciro A. ;
Cortona, Pietro ;
Adamo, Carlo .
JOURNAL OF CHEMICAL PHYSICS, 2014, 140 (10)
[65]   On the Metric of Charge Transfer Molecular Excitations: A Simple Chemical Descriptor [J].
Guido, Ciro A. ;
Cortona, Pietro ;
Mennucci, Benedetta ;
Adamo, Carlo .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2013, 9 (07) :3118-3126
[66]   Highly Efficient Multifluorenyl Host Materials with Unsymmetrical Molecular Configurations and Localized Triplet States for Green and Red Phosphorescent Devices [J].
Han, Chunmiao ;
Zhu, Liping ;
Li, Jing ;
Zhao, Fangchao ;
Zhang, Zhen ;
Xu, Hui ;
Deng, Zhaopeng ;
Ma, Dongge ;
Yan, Pengfei .
ADVANCED MATERIALS, 2014, 26 (41) :7070-+
[67]   Controllably Tuning Excited-State Energy in Ternary Hosts for Ultralow-Voltage-Driven Blue Electrophosphorescence [J].
Han, Chunmiao ;
Zhang, Zhensong ;
Xu, Hui ;
Li, Jing ;
Xie, Guohua ;
Chen, Runfeng ;
Zhao, Yi ;
Huang, Wei .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2012, 51 (40) :10104-10108
[68]   Phosphorescent light-emitting diodes using triscarbazole/bis(oxadiazole) hosts: comparison of homopolymer blends and random and block copolymers [J].
He, Xuyang ;
Cai, Dengke ;
Kang, Dun-Yen ;
Haske, Wojciech ;
Zhang, Yadong ;
Zuniga, Carlos A. ;
Wunsch, Benjamin H. ;
Barlow, Stephen ;
Leisen, Johannes ;
Bucknall, David ;
Kippelen, Bernard ;
Marder, Seth R. .
JOURNAL OF MATERIALS CHEMISTRY C, 2014, 2 (33) :6743-6751
[69]   Blue organic electrophosphorescence using exothermic host-guest energy transfer [J].
Holmes, RJ ;
Forrest, SR ;
Tung, YJ ;
Kwong, RC ;
Brown, JJ ;
Garon, S ;
Thompson, ME .
APPLIED PHYSICS LETTERS, 2003, 82 (15) :2422-2424
[70]   Computational Prediction for Singlet- and Triplet-Transition Energies of Charge-Transfer Compounds [J].
Huang, Shuping ;
Zhang, Qisheng ;
Shiota, Yoshihito ;
Nakagawa, Tetsuya ;
Kuwabara, Kazuhiro ;
Yoshizawa, Kazunari ;
Adachi, Chihaya .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2013, 9 (09) :3872-3877