Hang Liu, Peili Gao, Yin‐Man Song, Meng-Wei Wang, Ting Ding, Jing Jiang, Ruifeng Zheng, Shi Chen, Kar Wei Ng, Shuangpeng Wang
High Resolution Image Download MS PowerPoint Slide Titanium dioxide (TiO 2 ) is a promising alternative to conventional zinc oxide (ZnO) electron transport layers (ETLs) in quantum dot light-emitting diodes (QLEDs) owing to its superior chemical stability. However, TiO 2 ETLs fabricated via conventional high-temperature pyrolysis often suffer from inadequate crystallinity and high injection barrier, consequently leading to low electron injection efficiency. Herein, an efficient TiO 2 ETL was achieved via chlorine modified low-temperature synthesized anatase TiO 2 colloidal nanoparticles (NPs). Highly crystalline TiO 2 NPs ensure excellent electrical conductivity, while chlorine modification effectively suppresses nonradiative recombination at the TiO 2 /QD interface and reduces the electron injection barrier. QLEDs incorporating a Cl-TiO 2 ETL achieve a 39.5% improvement in current efficiency and a 64.8% extension in T 50 lifetime over the devices using pristine TiO 2 . Moreover, Cl-TiO 2 demonstrates superior atmospheric stability over ZnO as an ETL in QLEDs. This work offers a practical strategy for the development of high-performance and operationally stable QLEDs.