Luo Xiaofeng, Jin Qian, Du Mingxu, Wang Dong, Duan Lian, Zhang Yuewei
Key Lab of Organic Optoelectronics and Molecular Engineering of Ministry of Education, Department of Chemistry, Tsinghua University, Beijing, 100084, P. R. China.
Laboratory of Flexible Electronics Technology, Tsinghua University, Beijing, 100084, P. R. China.
Adv Sci (Weinh). 2024 Mar;11(11):e2307675. doi: 10.1002/advs.202307675. Epub 2023 Dec 31.
Narrowband emissive multiple resonance (MR) emitters promise high efficiency and stability in deep-blue organic light-emitting diodes (OLEDs). However, the construction of ideal ultra-narrow-band deep-blue MR emitters still faces formidable challenges, especially in balancing bathochromic-shift emission, spectral narrowing, and aggregation suppression. Here, DICz is chosen, which possesses the smallest full-width-at-half-maximum (FWHM) in MR structures, as the core and solved the above issue by tuning its peripheral substitution sites. The 1-substituted molecule Cz-DICz is able to show a bright deep-blue emission with a peak at 457 nm, an extremely small FWHM of 14 nm, and a CIE coordinate of (0.14, 0.08) in solution. The corresponding OLEDs exhibit high maximum external quantum efficiencies of 22.1%-25.6% and identical small FWHMs of 18 nm over the practical mass-production concentration range (1-4 wt.%). To the best of the knowledge, 14 and 18 nm are currently the smallest FWHM values for deep-blue MR emitters with similar emission maxima under photoluminescence and electroluminescence conditions, respectively. These discoveries will help drive the development of high-performance narrowband deep-blue emitters and bring about a revolution in OLED industry.
窄带发射型多重共振(MR)发光体有望在深蓝色有机发光二极管(OLED)中实现高效率和稳定性。然而,构建理想的超窄带深蓝色MR发光体仍面临巨大挑战,尤其是在平衡红移发射、光谱变窄和聚集抑制方面。在此,选择了在MR结构中具有最小半高宽(FWHM)的DICz作为核心,并通过调整其外围取代位点解决了上述问题。1-取代分子Cz-DICz在溶液中能够呈现出明亮的深蓝色发射,峰值为457 nm,半高宽极小,仅为14 nm,CIE坐标为(0.14, 0.08)。相应的OLED在实际大规模生产浓度范围(1-4 wt.%)内表现出22.1%-25.6%的高最大外量子效率以及相同的18 nm小半高宽。据所知,14 nm和18 nm分别是目前在光致发光和电致发光条件下具有相似发射最大值的深蓝色MR发光体的最小半高宽值。这些发现将有助于推动高性能窄带深蓝色发光体的发展,并给OLED产业带来一场革命。