量子点
配体(生物化学)
材料科学
光电子学
量子产额
光致发光
量子效率
二极管
密度泛函理论
电荷密度
电荷(物理)
化学
电子
发光二极管
化学物理
纳秒
电流密度
纳米技术
电子传输链
单重态
电致发光
作者
Jaejun CHANG,Moon Gyu Han,Ji Hyun Min,Jae Pil Kim
摘要
Surface ligand engineering plays a key role in optimizing the performance of colloidal quantum dot light-emitting diodes (QD-LEDs). While conventional ligand engineering strategies rely on ligand exchange processes that include both the removal of native ligands and the introduction of alternative passivating molecules, such approaches often introduce chemical complexity and overlapping effects. In this study, we demonstrate that selectively removing native oleic acid ligands, without introducing new ligands, can effectively enhance device efficiency and operational lifetime. Using trimethyloxonium tetrafluoroborate as a mild stripping agent, we tuned ligand density in ZnSeTe/ZnSe/ZnS blue quantum dots with controlled treatment concentrations. Thermogravimetric analysis confirmed progressive ligand removal, while photoluminescence (PL) quantum yield and time-resolved PL measurements revealed a concomitant increase in surface trap states. Despite the introduction of additional defects, the resulting QD-LEDs exhibited improved performance: the current efficiency increased from 9.0 to 14.4 cd A−1, and the operational lifetime LT50 (time to 50% luminance decay) extended from 17.9 to 61.5 h. Single-carrier measurements revealed that although both hole and electron transport decreased following ligand stripping, electron mobility was more strongly suppressed than hole mobility, resulting in improved charge balance. These findings suggest that surface defect formation, often considered detrimental, can instead be leveraged through careful ligand density control as a viable tool for enhancing QD-LED performance.
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