Tang Ying-Yi, Shen Yang, Yu Yi, Zhang Kai, Wang Bing-Feng, Tang Jian-Xin, Li Yan-Qing
School of Physics and Electronic Science, East China Normal University, Shanghai, 200062, China.
Institute of Functional Nano & Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, 215123, China.
Small. 2024 Apr;20(16):e2309309. doi: 10.1002/smll.202309309. Epub 2023 Nov 28.
As an essential component of future full-color displays, blue perovskite light-emitting diodes (PeLEDs) still lag far behind the red and green counterparts in the device performances. In the mainstream quasi-2D blue perovskite system, trap-mediated nonradiative loss, low energy transfer efficiency, and interface fluorescence quenching remain significant challenges. Herein, guanidinium thiocyanate (GASCN) and potassium cinnamate (PCA) are respectively introduced into the hole transport layer (HTL) and the perovskite precursor to achieve a dense and uniform perovskite thin film with greatly improved optoelectronic properties. Therefore, adequate GA acts as pre-nucleation sites on the HTL surface, regulating crystallization through strong hydrogen bonding with perovskite intermediates. The realized polydisperse domain distribution is conducive to cascade energy transfer, and the improved hole transport ability alleviates interface fluorescence quenching. In addition, the SCN and CA groups can form coordination bonds with the defects at the buried perovskite interface and grain boundaries, respectively, which effectively suppresses the detrimental nonradiative recombination. Benefitting from the comprehensive crystal regulation, blue PeLEDs featuring stable emission at 484 and 468 nm exhibit improved external quantum efficiencies of 11.5% and 4.3%, respectively.
作为未来全彩显示器的重要组成部分,蓝色钙钛矿发光二极管(PeLEDs)在器件性能方面仍远远落后于红色和绿色同类产品。在主流的准二维蓝色钙钛矿体系中,陷阱介导的非辐射损失、低能量转移效率和界面荧光猝灭仍然是重大挑战。在此,分别将硫氰酸胍(GASCN)和肉桂酸钾(PCA)引入空穴传输层(HTL)和钙钛矿前驱体中,以获得具有大大改善的光电性能的致密且均匀的钙钛矿薄膜。因此,适量的GA在HTL表面充当预成核位点,通过与钙钛矿中间体形成强氢键来调节结晶。实现的多分散域分布有利于级联能量转移,并且改善的空穴传输能力减轻了界面荧光猝灭。此外,SCN和CA基团可分别与埋入的钙钛矿界面和晶界处的缺陷形成配位键,从而有效抑制有害的非辐射复合。受益于全面的晶体调控,在484和468 nm处具有稳定发射的蓝色PeLEDs分别表现出提高至11.5%和4.3%的外量子效率。