CAS Key Laboratory of Renewable Energy, Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences , Guangzhou 510640, China.
Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development , Guangzhou 510640, China.
ACS Appl Mater Interfaces. 2018 Jan 31;10(4):3865-3873. doi: 10.1021/acsami.7b16261. Epub 2018 Jan 16.
For an organic-inorganic hybrid quantum dot light-emitting diode (QD-LED), enhancing hole injection into the emitter for charge balance is a priority to achieve efficient device performance. Aiming at this, we employ N,N'-bis(3-methylphenyl)-N,N'-bis(phenyl)benzidine (TPD) as the additional hole transport material which was mixed with poly(9-vinylcarbazole) (PVK) to form a composite hole transport layer (HTL) or was employed to construct a TPD/PVK bilayer structure. Enabled by this TPD modification, the green QD-LED (at a wavelength of 515 nm) exhibits a subband gap turn-on voltage of 2.3 V and a highest luminance up to 56 157 cd/m. Meanwhile, such TPD modification is also beneficial to acquire efficient blue and red QD-LEDs. In particular, the external quantum efficiencies (EQEs) for these optimized full-color QD-LEDs are 8.62, 9.22, and 13.40%, which are 3-4 times higher than those of their pure PVK-based counterparts. Revealed by the electrochemical impedance spectroscopy, the improved electroluminescent efficiency is ascribable to the reductions of recombination resistance and charge-transfer resistance. The prepared QD-LEDs surpass the EQE values achieved in previous reports, considering devices with small-molecule-modified HTLs. This work offers a general but simple and very effective approach to realize the low turn-on-voltage, bright, and efficient full-color QD-LEDs via this solution-processable HTL modification.
对于有机-无机杂化量子点发光二极管 (QD-LED),增强空穴注入发射体以实现电荷平衡是实现高效器件性能的首要任务。针对这一点,我们采用 N,N'-双(3-甲基苯基)-N,N'-双(苯基)联苯 (TPD) 作为额外的空穴传输材料,与聚(9-乙烯基咔唑) (PVK) 混合形成复合空穴传输层 (HTL),或用于构建 TPD/PVK 双层结构。通过这种 TPD 改性,绿光 QD-LED(波长为 515nm)的亚带隙开启电压为 2.3V,最高亮度高达 56157cd/m。同时,这种 TPD 改性还有利于获得高效的蓝色和红色 QD-LED。特别是,这些优化的全彩色 QD-LED 的外量子效率 (EQE) 分别为 8.62%、9.22%和 13.40%,比其纯 PVK 基对应物高 3-4 倍。通过电化学阻抗谱揭示,改进的电致发光效率归因于复合电阻和电荷转移电阻的降低。与使用小分子修饰 HTL 的器件相比,所制备的 QD-LED 的 EQE 值超过了之前报道的值,这表明该工作提供了一种通用但简单且非常有效的方法,通过这种溶液处理 HTL 改性,可以实现低开启电压、亮度高且效率高的全彩色 QD-LED。