材料科学
量子点
光电子学
二极管
交流电
电流(流体)
发光二极管
纳米技术
电压
电气工程
工程类
作者
Hak June Lee,Jin Su Park,Seunghyun Rhee,Jeong Woo Park,Hae‐Jun Seok,Dongju Jung,Jaemin Lim,Doyoon Shin,Seongbin Im,Se Jong Min,Young‐Shin Park,Han‐Ki Kim,Wan Ki Bae,Donghyo Hahm
标识
DOI:10.1021/acsami.4c09447
摘要
In colloidal quantum dot light-emitting diodes (QD-LEDs), replacing organic hole transport layers (HTLs) with their inorganic counterparts is expected to yield distinct advantages due to their inherent material robustness. However, despite the promising characteristics of all-inorganic QD-LEDs, some challenges persist in achieving stable operation; for example, the electron overflow toward the inorganic HTL and charge accumulation within working devices return a temporal inconsistency in device characteristics. To address these challenges, we propose an operational approach that employs an alternating-current (AC) in all-inorganic QD-LEDs. We carry out comprehensive studies on the optoelectrical characteristics of all-inorganic QD-LEDs under direct-current (DC) or AC operation and demonstrate that AC operation can facilitate efficient charge carrier recombination within the QD emissive layer, leading to improved device efficiency and temporally invariant optoelectronic characteristics. Leveraging the intrinsic material robustness of inorganic charge transport layers (CTLs), our current study suggests a promising pathway toward enhancing the performance and stability of QD-LEDs, particularly for futuristic display applications.
科研通智能强力驱动
Strongly Powered by AbleSci AI