TY - JOUR
T1 - Dipole-tunable interfacial engineering strategy for high-performance all-inorganic red quantum-dot light-emitting diodes
AU - Cai, Fensha
AU - Li, Meng
AU - Zhou, Yamei
AU - Tu, Yufei
AU - Liang, Chao
AU - Su, Zhenhuang
AU - Gao, Xingyu
AU - Zeng, Zaiping
AU - Hou, Bo
AU - Li, Zhe
AU - Aldamasy, Mahmoud H.
AU - Jiang, Xiaohong
AU - Wang, Shujie
AU - Du, Zuliang
N1 - Publisher Copyright:
© 2023 The Authors
PY - 2024/1
Y1 - 2024/1
N2 - All-inorganic quantum dot (QD) light-emitting diodes (AI-QLEDs) with excellent stability received enormous interest in the past few years. Nevertheless, the vast energy offset and the high trap density at the NiOX/QDs interface limit hole injection leading to fluorescence quenching and hampering the performance. Here, we present self-assembled monolayers (SAMs) with phosphonic acid (PA) anchoring groups modifying NiOX hole transport layer (HTL) to tune energy level and passivate trap states. This strategy facilitates hole injection owning to the well-aligned energy level by interface dipole, downshifting the vacuum level, reducing the hole injection barrier from 0.94 eV to 0.28 eV. Meanwhile, it mitigates the interfacial recombination by passivating surface hydroxyl group (-OH) and oxygen vacancy (VO) traps in NiOX. The electron leakage from QDs toward NiOX HTL is significantly suppressed. The all-inorganic R-QLEDs exhibit one of the highest maximum luminance, external quantum efficiency and operational lifetime of 88980 cd m−2, 10.3 % and 335045 h (T50 @100 cd m−2), respectively. The as-proposed interface engineering provides an effective design principle for high-performance AI-QLEDs for future outdoor and optical projection-type display applications.
AB - All-inorganic quantum dot (QD) light-emitting diodes (AI-QLEDs) with excellent stability received enormous interest in the past few years. Nevertheless, the vast energy offset and the high trap density at the NiOX/QDs interface limit hole injection leading to fluorescence quenching and hampering the performance. Here, we present self-assembled monolayers (SAMs) with phosphonic acid (PA) anchoring groups modifying NiOX hole transport layer (HTL) to tune energy level and passivate trap states. This strategy facilitates hole injection owning to the well-aligned energy level by interface dipole, downshifting the vacuum level, reducing the hole injection barrier from 0.94 eV to 0.28 eV. Meanwhile, it mitigates the interfacial recombination by passivating surface hydroxyl group (-OH) and oxygen vacancy (VO) traps in NiOX. The electron leakage from QDs toward NiOX HTL is significantly suppressed. The all-inorganic R-QLEDs exhibit one of the highest maximum luminance, external quantum efficiency and operational lifetime of 88980 cd m−2, 10.3 % and 335045 h (T50 @100 cd m−2), respectively. The as-proposed interface engineering provides an effective design principle for high-performance AI-QLEDs for future outdoor and optical projection-type display applications.
KW - All-inorganic quantum dot light-emitting diodes
KW - Interface engineering
KW - Molecular dipole
KW - NiO hole transport layer
KW - Self-assembled monolayer
UR - https://www.scopus.com/pages/publications/85175256294
U2 - 10.1016/j.nanoen.2023.109050
DO - 10.1016/j.nanoen.2023.109050
M3 - 文章
AN - SCOPUS:85175256294
SN - 2211-2855
VL - 119
JO - Nano Energy
JF - Nano Energy
M1 - 109050
ER -