Kang Sunwoo, Kim Taekyung
Department of Chemistry, Dankook University, Cheonan, 448- 701, Chungnam, Republic of Korea.
Department of Chemical Engineering, Kyung Hee University, Yongin-si, 17104, Republic of Korea.
Sci Rep. 2025 Jul 6;15(1):24125. doi: 10.1038/s41598-025-09721-5.
We designed a series of new EIL molecules based on the Liq. As a simple design strategy, S and Se atoms were utilized to replace O atom of quinolate moiety. Additionally, the quinolate derivatives including S and Se atoms with singly oxidized metal ions (Na, K, Rb, Cs, Ag, and Au) were also designed. The DFT and TDDFT calculations were performed to understand the charge transport, and photophysical properties of designed molecules. As a result, the AuSq and AuSeq are expected to provide benefits to develop the OLED device performance. First, faster electron hopping rate and lower injection barrier are expected to increase the amount of electron carriers into EML, which crucially helps to improve the exciton recombination rate and J-V characteristic. Eventually, the external quantum efficiency and power efficiency are expected to increase. Moreover, these designed molecules hardly absorb any primary colors, thereby they don't reduce the out-coupled light photons. Based on these results, we strongly suggest that AuSq and AuSeq can be utilized as alternative EIL material to achieve the superior performance in OLED devices.
我们基于Liq设计了一系列新型电子注入层(EIL)分子。作为一种简单的设计策略,利用S和Se原子取代喹啉酸部分的O原子。此外,还设计了包含带有单氧化态金属离子(Na、K、Rb、Cs、Ag和Au)的S和Se原子的喹啉酸衍生物。进行密度泛函理论(DFT)和含时密度泛函理论(TDDFT)计算以了解所设计分子的电荷传输和光物理性质。结果表明,预计AuSq和AuSeq将有助于提升有机发光二极管(OLED)器件的性能。首先,更快的电子跳跃速率和更低的注入势垒有望增加进入发光层(EML)的电子载流子数量,这对于提高激子复合率和电流-电压(J-V)特性至关重要。最终,预计外部量子效率和功率效率将会提高。此外,这些设计的分子几乎不吸收任何原色,因此它们不会减少出射的光子。基于这些结果,我们强烈建议AuSq和AuSeq可作为替代的电子注入层材料,以在OLED器件中实现卓越性能。