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Efficient white light-emitting diodes based on all-perovskite triple-junction tandems

delete2026-03-11
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PRE
AI
C
Cong Geng
C
Changjiu Sun *
K
Keyu Wei
K
Kai Zhang
X
Xue Han
Z
Zijin Ding
S
Saisai Li
S
Saif M. H. Qaid
Z
Zheng Yang
何庭伟 (Tingwei He)
S
Shaopeng Yang
Y
Yuanzhi Jiang *
M
Mingjian Yuan *
DOI:10.1038/s41566-026-01870-xdelete
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Abstract

Abstract

En 中文
Triple-junction tandem light-emitting diodes (LEDs) with simultaneous red, green and blue emission are ideal back-lights for next-generation ultrahigh-definition displays. Although metal halide provost’s are promising candidates for such devices, the solution processing of multilayer stacks remains a fundamental challenge, leading to pronounced efficiency losses in all-perovskite tandem LEDs. Here we present a manufacturing-compatible transfer-printing approach for monolithic integration. We first identify that performance degradation during conventional transfer printing stems from strong interfacial adhesion. To overcome this, we engineer a damage-free transfer process using a temperature-triggered ‘solid–liquid’-switchable interface. This interface, formed via methylamine-assisted transient liquefaction, minimises interfacial stress and facilitates surface regression. We also design an interconnecting layer stack that incorporates interfacial dipoles and tunnelling injection, reducing the global voltage loss to only ~0.5 V compared with all single-junction counterparts. We demonstrate a triple-junction all-perovskite white LED with an ultrawide colour gamut covering 143% of the NTSC standard, a maximum luminance exceeding 67,000 cd m−2 and a certified external quantum efficiency of 16.4%. A proof-of-concept 2.0 × 2.0 cm2 display prototype on both rigid and flexible substrates further underscores the scalability of our strategy for perovskite displays. All-perovskite tandem white LEDs fabricated via a solid–liquid interface transfer-printing technique achieve minimized voltage loss, a peak certified external quantum efficiency of 16.4% and maximum luminance beyond 67.000 cd m−2.
Keywords:
Lasers, LEDs and light sources
Physics
general
Applied and Technical Physics
Quantum Physics

Journal

Nature Photonics cover
Nature Photonics
IF:
32.9
Papers:
4.3K
Citations:
6.1W

Organization

K
King Saud University
Scholars:
3.4W
Papers: 3.8W
Citations: 815
H
hebei university
Scholars:
1.8K
Papers: 558
Citations: 0
N
nankai university
Scholars:
4.6W
Papers: 3.2W
Citations: 74
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