材料科学
窄带
有机发光二极管
系统间交叉
光电子学
光致发光
量子产额
电致发光
量子效率
二极管
共发射极
偶极子
调制(音乐)
激子
荧光
自发辐射
半最大全宽
光学
量子
产量(工程)
准分子
作者
Guo‐Wei Chen,Xin‐Yi Zeng,Yaozu Su,Jianfeng Liu,Hui Liang,Yan‐Qing Li,Yanping HUO,Jian‐Xin Tang
摘要
ABSTRACT Multi‐resonance thermally activated delayed fluorescence (MR‐TADF) emitters are attractive for ultrahigh‐definition organic light‐emitting diode (OLED) displays due to their narrowband emission and high color purity. However, the detrimental trade‐off between electroluminescence efficiency and broadened emission band remains a critical challenge for blue MR‐TADF materials. Herein, a rational charge‐transfer (CT) engineering strategy is proposed to design and synthesize four MR‐TADF molecules: SB‐DOP, DB‐DOP, DB‐DFN and DB‐DFNP, which feature the progressively extended linear conjugation. Benefiting from the precise regulation of the CT strength for rapid spin‐flip process, DB‐DFN achieves a high reverse intersystem crossing rate constant of 3.824 × 10 6 s −1 , along with a high photoluminescence quantum yield approaching 100% and a narrow full width at half maximum (FWHM) of 20 nm. In addition, the extended linear conjugation endows DB‐DFN with a 95% horizontal dipole orientation ratio. The optimized OLED employing DB‐DFN as a blue emitter exhibits a high external quantum efficiency of 42.12% with mitigated efficiency roll‐off at high luminance. The present study breaks through the “efficiency‐purity” trade‐off dilemma, providing new insights and practical examples for the design of high‐efficiency, low‐roll‐off narrowband blue OLED materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI