光电子学
量子点
材料科学
发光二极管
纳米晶材料
二极管
光伏
宽禁带半导体
兴奋剂
量子效率
纳米技术
光伏系统
电气工程
工程类
作者
Yizhen Zheng,Xing Lin,Jiongzhao Li,Jianan Chen,Wenhao Wu,Zixuan Song,Yuan Gao,Zhuang Hu,Huifeng Wang,Zikang Ye,Haiyan Qin,Xiaogang Peng
标识
DOI:10.1038/s41467-025-58471-5
摘要
Abstract Quantum-dot optoelectronics, pivotal for lighting, lasing and photovoltaics, rely on nanocrystalline oxide electron-injection layer. Here, we discover that the prevalent surface magnesium-modified zinc oxide electron-injection layer possesses poor n-type attributes, leading to the suboptimal and encapsulation-resin-sensitive performance of quantum-dot light-emitting diodes. A heavily n-doped nanocrystalline electron-injection layer—exhibiting ohmic transport with 1000 times higher electron conductivity and improved hole blockage—is developed via a simple reductive treatment. The resulting sub-bandgap-driven quantum-dot light-emitting diodes exhibit optimal efficiency and extraordinarily-high brightness, surpassing current benchmarks by at least 2.6-fold, and reaching levels suitable for quantum-dot laser diodes with only modest bias. This breakthrough further empowers white-lighting quantum-dot light-emitting diodes to exceed the 2035 U.S. Department of Energy’s targets for general lighting, which currently accounts for ~15% of global electricity consumption. Our work opens a door for understanding and optimizing carrier transport in nanocrystalline semiconductors shared by various types of solution-processed optoelectronic devices.
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