Balancing charge-transfer strength and triplet states for deep-blue thermally activated delayed fluorescence with an unconventional electron rich dibenzothiophene acceptor

被引:62
|
作者
Huang, Rongjuan [1 ]
Kukhta, Nadzeya [2 ]
Ward, Jonathan S. [2 ]
Danos, Andrew [1 ]
Batsanov, Andrei S. [2 ]
Bryce, Martin R. [2 ]
Dias, Fernando B. [1 ]
机构
[1] Univ Durham, Dept Phys, South Rd, Durham DH1 3LE, England
[2] Univ Durham, Dept Chem, South Rd, Durham DH1 3LE, England
基金
英国工程与自然科学研究理事会;
关键词
LIGHT-EMITTING-DIODES; DEGRADATION MECHANISMS; QUANTUM EFFICIENCY; MOLECULAR DESIGN; TADF; DEVICES; EMITTERS; PHOSPHORESCENCE; EMISSION;
D O I
10.1039/c9tc02175b
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Manipulation of the emission properties of deep-blue emitters exhibiting thermally activated delayed fluorescence (TADF) through molecular design is challenging. We present an effective strategy to probe deeper into the role of localized (LE) and charge transfer (CT) states in the reverse intersystem crossing (RISC) mechanism. In a series of donor-acceptor-donor (D-A-D) blue emitters the dibenzothiophene functionality is used as an unconventional acceptor, while derivatives of 9,10-dihydro-9,9-dimethylacridine are used as electron-donors. tert-Butyl and methoxy substituents in the para-positions of the donor greatly enhance the donor strength, which allows exploration of different energy alignments among CT and LE triplet states. In the tert-butyl substituted compound the low energy triplet is localized on the acceptor unit, with the RISC mechanism (k(RISC) = 0.17 x 10(5) s(-1)) likely involving the mixture of CT and LE triplet states that are separated by less than 0.09 eV. An optimized organic light-emitting diode (OLED) based on the tBu-compound presents a maximum external quantum efficiency of 10.5% and deep-blue emission with Commission Internationale de l'Eclairage coordinates of (0.133, 0.129). However, when methoxy substituents are used, the low-energy triplet state moves away from the emissive (CT)-C-1 singlet increasing the energy gap to 0.24 eV. Despite a larger Delta E-ST, a faster RISC rate (k(RISC) = 2.28 x 10(5) s(-1)) is observed due to the upper-state RISC occurring from the high-energy triplet state localized on the D (or A) units. This work shows the importance of fine-tuning the electronic interactions of the donor and acceptor units to control the TADF mechanism and achieve a deep-blue TADF OLED.
引用
收藏
页码:13224 / 13234
页数:11
相关论文
共 50 条
  • [1] Carbazole-2-carbonitrile as an acceptor in deep-blue thermally activated delayed fluorescence emitters for narrowing charge-transfer emissions
    Chan, Chin-Yiu
    Lee, Yi-Ting
    Mamada, Masashi
    Goushi, Kenichi
    Tsuchiya, Youichi
    Nakanotani, Hajime
    Adachi, Chihaya
    CHEMICAL SCIENCE, 2022, 13 (26) : 7821 - 7828
  • [2] Optical and Polarity Control of Donor Acceptor Conformation and Their Charge-Transfer States in Thermally Activated Delayed Fluorescence Molecules
    dos Santos, Paloma L.
    Ward, Jonathan S.
    Batsanov, Andrei S.
    Bryce, Martin R.
    Monkman, Andrew P.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2017, 121 (30): : 16462 - 16469
  • [3] Controlling Singlet-Triplet Energy Splitting for Deep-Blue Thermally Activated Delayed Fluorescence Emitters
    Cui, Lin-Song
    Nomura, Hiroko
    Geng, Yan
    Kim, Jong Uk
    Nakanotani, Hajime
    Adachi, Chihaya
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (06) : 1571 - 1575
  • [4] Efficient deep-blue thermally activated delayed fluorescence emitters based on diphenylsulfone-derivative acceptor
    Sun, Shuaiqiang
    Guo, Runda
    Zhang, Qing
    Lv, Xialei
    Leng, Panpan
    Wang, Yaxiong
    Huang, Zhi
    Wang, Lei
    DYES AND PIGMENTS, 2020, 178
  • [5] Deep-blue thermally activated delayed fluorescence emitter with a very high fluorescence rate
    Wang, Haonan
    Cheng, Cong
    Wang, Dan
    Lou, Weiwei
    Zhu, Yunhui
    Deng, Chao
    Li, Guijie
    Zhang, Qisheng
    ORGANIC ELECTRONICS, 2021, 96
  • [6] Deep-blue thermally activated delayed fluorescence carbon dots with ultralong lifetime
    Jie, Yanni
    Wang, Dong
    Chen, Runfeng
    Zhang, Jingyu
    Li, Wenqi
    Huang, Jianfeng
    Dai, Penggao
    Gao, Yang
    Li, Fuchun
    Fang, Jiawen
    NANOSCALE, 2023, 15 (07) : 3337 - 3344
  • [7] Rational Molecular Design for Deep-Blue Thermally Activated Delayed Fluorescence Emitters
    Chan, Chin-Yiu
    Cui, Lin-Song
    Kim, Jong Uk
    Nakanotani, Hajime
    Adachi, Chihaya
    ADVANCED FUNCTIONAL MATERIALS, 2018, 28 (11)
  • [8] Converting thermally activated delayed fluorescence into hybridized local and charge-transfer via an addition acceptor moiety
    Zhao, Mengyu
    Wei, Qiang
    Zhang, Jiasen
    Li, Wei
    Wang, Zhichuan
    Du, Songyu
    Xue, Qin
    Xie, Guohua
    Ge, Ziyi
    ORGANIC ELECTRONICS, 2022, 100
  • [9] Designing Stable Deep-Blue Thermally Activated Delayed Fluorescence Emitters through Controlling the Intrinsic Stability of Triplet Excitons
    Kang, Hosuk
    Ihn, Soo-Ghang
    Kim, Inkoo
    Chung, Yeon Sook
    Jeon, Soon Ok
    Sim, Myungsun
    Kim, Joonghyuk
    Lee, Hasup
    Son, Youngmok
    Son, Won-Joon
    Jang, Inkook
    Kim, Dae Sin
    Choi, Hyeonho
    Hong, Jin Pyo
    ADVANCED OPTICAL MATERIALS, 2022, 10 (12)
  • [10] Deep-blue thermally activated delayed fluorescence materials with high glass transition temperature
    Zhu, Xiang-Dong
    Tian, Qi-Sheng
    Zheng, Qi
    Wang, Ya-Kun
    Yuan, Yi
    Li, Yun
    Jiang, Zuo-Quan
    Liao, Liang-Sheng
    JOURNAL OF LUMINESCENCE, 2019, 206 : 146 - 153