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Molecular N-Type Doping Unlocks Low-Threshold Nanosecond Lasing in a Microcavity-Integrated OLED Toward Electrically Pumped Organic Lasers

delete2026-06-09
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PRE
AI
W
Wei Cheng
B
Bo Peng
C
Chenmiao Zhao
L
Leshen Lin
Y
Yuhao Xie
Z
Zihao Xu
B
Boning Wu *
W
Wenming Tian
Y
Yongli Yan
姚建年 cover
姚建年 (Jiannian Yao)
K
Kang Wang *
Y
Yong Sheng Zhao *
DOI:10.1002/anie.5388345delete
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Abstract

Abstract

En 中文
Organic semiconductors are attractive for the development of flexible, wavelength-tunable lasers. However, most reported organic micro/nanolasers rely on femtosecond-pulsed optical pumping, which is impractical for real-world applications. This limitation has urged the pursuit of electrically pumped organic lasers; yet their realization remains a long-standing challenge primarily due to a fundamental materials dilemma, in which high-gain organic semiconductors often suffer from poor, unbalanced charge transport. Here, we demonstrate that this intrinsic trade-off can be effectively alleviated through a molecular doping strategy. Employing a high-gain spirofluorene derivative as the emissive layer, we introduce an n-type doped layer to construct an organic light-emitting diode (OLED), achieving more balanced charge transport while preserving outstanding optical gain. Consequently, singlet-polaron annihilation is significantly suppressed, as evidenced by reduced efficiency roll-off and electrically pumped transient absorption measurements. When integrated with a distributed feedback (DFB) resonator, the resulting device exhibits ultra-narrow (∼2 nm) electroluminescence under pulsed current injections and delivers low-threshold nanosecond lasing under an optical–electrical co-pumping configuration, thereby demonstrating a practical architecture for implementing organic laser diodes. Our work provides a general strategy to overcome the intrinsic paradox where high-gain organic semiconductors struggle to maintain balanced charge transport, illuminating a pathway toward light amplification under electrical excitation.
Keywords:
electrically pumped laser
microcavity-integrated OLED
nanosecond lasing
n-type doping
organic laser

Journal

Angewandte Chemie International Edition cover
Angewandte Chemie International Edition
IF:
16.9
Papers:
4.7K
Citations:
368

Organization

U
University of Chinese Academy of Sciences
Scholars:
5.9K
Papers: 2.4K
Citations: 24.6W
C
chinese academy of sciences
Scholars:
55.3W
Papers: 44.6W
Citations: 704