posted on 2016-12-13, 00:00authored byZhifeng Shi, Ying Li, Yuantao Zhang, Yongsheng Chen, Xinjian Li, Di Wu, Tingting Xu, Chongxin Shan, Guotong Du
Perovskite
light-emitting diodes (PeLEDs), because of its fundamental scientific
importance and practical applications in the fields of low-cost light
source or display applications, have drawn worldwide attention in
recent years. However, PeLEDs available today suffer from a compromise
in their emission efficiency and operation stability. In this study,
we designed and fabricated a stacking all-inorganic multilayer structure
by using inorganic perovskite CsPbBr3 quantum dots (QDs)
as the emissive layer and inorganic n-type MgZnO and p-type MgNiO
as the carrier injectors, respectively. Through energy band engineering
of carrier injectors by Mg incorporation and their thickness optimization,
PeLEDs with maximum luminance of 3809 cd/m2, luminous efficiency
of 2.25 cd/A, and external quantum efficiency of 2.39% have been realized,
which are much better than most PeLEDs from CH3NH3PbBr3 films, and comparable with the highest results reported
on CsPbBr3 QDs LEDs. More importantly, the unencapsulated
PeLEDs in a continuous current mode demonstrate a remarkable operation
stability against water and oxygen degradation. After a continuous
operation for 10 h under a dc bias (10.0 V), nearly 80% of the original
efficiency of the PeLEDs has been retained, greatly superior to reference
and other previously reported devices constructed with conventional
organic carrier injectors. Our results obtained open possibilities
for the design and development of high-efficiency and air-stable PeLEDs
that are not dependent on expensive and less-stable organic carrier
injectors.