Li Chenyang, Wang Qifa, Yi Ruixuan, Zhang Xutao, Gan Xuetao, Liu Kaihui, Zhao Jianlin, Xiao Fajun
Key Laboratory of Light-Field Manipulation and Information Acquisition, Ministry of Industry and Information Technology, and Shaanxi Key Laboratory of Optical Information Technology, School of Physical Science and Technology, Northwestern Polytechnical University, Xi'an 710129, China.
Frontiers Science Center for Flexible Electronics, Xi'an Institute of Flexible Electronics (IFE) and Xi'an Institute of Biomedical Materials & Engineering, Northwestern Polytechnical University, 127 West Youyi Road, Xi'an 710072, China.
Nano Lett. 2024 Sep 16. doi: 10.1021/acs.nanolett.4c03479.
Two-dimensional (2D) semiconductors, owing to their strong excitonic emission, are emerging as efficient gain media for constructing the ultimate nanolaser. The further integration of 2D semiconductors with plasmonic devices holds promise for realizing the thinnest laser. However, the implementation of 2D semiconductor plasmonic lasing is severely hindered by the limited cavity feedback and low gain resulting from insufficient plasmon-exciton interactions. Here, we report the realization of a room-temperature 2D semiconductor plasmonic laser by embedding an InSe nanoflake into a plasmonic Fabry-Perot (F-P) cavity. This plasmonic F-P cavity shows an exceptional ability to recycle the leaked dark surface plasmon, resulting in >2-fold enhancement of feedback compared to that of conventional metal-insulator-semiconductor nanolasers. Moreover, via combination of field enhancement and orientation matching, this cavity facilitates optimized plasmon-exciton coupling to ensure sufficient gain for sustaining room-temperature lasing. Our work may open up the possibilities for multifunctional photonic devices based on 2D materials.
二维(2D)半导体因其强烈的激子发射,正成为构建终极纳米激光器的高效增益介质。二维半导体与等离子体器件的进一步集成有望实现最薄的激光器。然而,二维半导体等离子体激光的实现受到了有限的腔反馈以及等离子体-激子相互作用不足导致的低增益的严重阻碍。在此,我们报告通过将InSe纳米片嵌入等离子体法布里-珀罗(F-P)腔实现了室温二维半导体等离子体激光器。这种等离子体F-P腔展现出非凡的能力来回收泄漏的暗表面等离子体,与传统金属-绝缘体-半导体纳米激光器相比,反馈增强了两倍以上。此外,通过场增强和取向匹配相结合,该腔促进了优化的等离子体-激子耦合,以确保有足够的增益来维持室温激光发射。我们的工作可能为基于二维材料的多功能光子器件开辟可能性。