He Xin, Lou Jingli, Li Baoxi, Dong Xiaobin, Zhong Feiyang, Liu Wei, Feng Xing, Yang Dezhi, Ma Dongge, Zhao Zujin, Wang Zhiming, Tang Ben Zhong
AIE Institute, State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Luminescence from Molecular Aggregates, Center for Aggregation-Induced Emission, South China University of Technology (SCUT), Guangzhou, 510640, P. R. China.
Guangdong Provincial Key Laboratory of Information Photonics Technology, School of Material and Energy, Guangdong University of Technology, Guangzhou, 510006, P. R. China.
Adv Mater. 2024 Jan;36(2):e2310417. doi: 10.1002/adma.202310417. Epub 2023 Nov 27.
The spectral narrowing engineering of pure-organic emitters attracts great research interests in realizing high color purity. Here, the adjusted medium-range charge transfer (MCT) strategy of TIC-BO with rigid planar structure by fusing two typical UV-emitting multiple resonance (MR) fragments via the ingenious double-halide cyclized coupling reaction is reported. The resulting TIC-BO with MCT nature shows efficient violet-blue emission in dilute toluene and evaporated host-guest films, and desirably narrowed spectra are achieved by the suppression of structural relaxation and the shortened charge transfer states. The single-doped device with TIC-BO as emitter shows narrowed violet-blue electroluminescence peaked at 428 nm with full-width at half-maximum of 43 nm (0.28 eV), and the Commission Internationale de l'Éclairage coordinates of (0.160, 0.050). A maximum external quantum efficiency (EQE ) of 20.50% is achieved, which is among the best results of the corresponding violet-blue emitting region. Further introduction of a stronger electron-donating carbazole group makes TIC-BNO exhibit red-shifted sky-blue emission with MR-dominant properties, and good device performance is received with EQE of 34.58%. The outstanding performances of TIC-BO successfully demonstrate the significance and prospect of the proposed molecular design strategy.
纯有机发光体的光谱窄化工程在实现高色纯度方面引起了极大的研究兴趣。在此,报道了通过巧妙的双卤化物环化偶联反应融合两个典型的紫外发光多共振(MR)片段,对具有刚性平面结构的TIC-BO进行的中程电荷转移(MCT)策略调整。所得具有MCT性质的TIC-BO在稀甲苯和蒸发的主客体薄膜中表现出高效的紫蓝色发射,并且通过抑制结构弛豫和缩短电荷转移态实现了理想的窄化光谱。以TIC-BO作为发光体的单掺杂器件显示出在428nm处达到峰值的窄化紫蓝色电致发光,半高宽为43nm(0.28eV),国际照明委员会坐标为(0.160,0.050)。实现了20.50%的最大外量子效率(EQE),这是相应紫蓝色发光区域的最佳结果之一。进一步引入更强的给电子咔唑基团使TIC-BNO表现出具有MR主导性质的红移天蓝色发射,并获得了34.58%的EQE的良好器件性能。TIC-BO的优异性能成功证明了所提出的分子设计策略的重要性和前景。