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

光电子学 激光阈值 材料科学 有机半导体 有机发光二极管 兴奋剂 电致发光 纳秒 二极管 激光器 半导体 半导体激光器理论 吸收(声学) 光子学 活动层 载流子 增益开关 半导体光学增益 光抽运 晶体管 光开关 半导体器件 受激发射 超快激光光谱学
作者
Wei Cheng,Bo Peng,Chenmiao Zhao,Leshen Lin,Yuhao Xie,Z Xu,Boning Wu,Wenming Tian,Yongli Yan,J Yao,Kang Wang,Yong Sheng Zhao
出处
期刊:Angewandte Chemie [Wiley]
卷期号:65 (33): e5388345-e5388345
标识
DOI:10.1002/anie.5388345
摘要

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.
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