Ultra-thin size-controllable surface plasmon polariton laser by PDMS-assisted imprinting

材料科学 表面等离子体激元 光电子学 极化子 激光器 表面等离子体子 薄膜 等离子体子 纳米技术 光学 物理
作者
Jing Zhao,Runkang Lin,Jinyao Wang,Jiaqian Sun,Keqian Dong,Huayi Zou,Jiangying Lu,Jingteng Ma,Shudi Lu,Fangyuan Ma,Kong Liu,Shizhong Yue,Zhijie Wang,Shengchun Qu
出处
期刊:Journal of Physics D [Institute of Physics]
卷期号:57 (40): 405102-405102 被引量:3
标识
DOI:10.1088/1361-6463/ad5f97
摘要

Abstract Plasmonic laser has great potential to overcome the optical diffraction limit, playing a crucial role in advancing nanophotonics and nanoelectronics for on-chip integration. However, current plasmonic lasers face several challenges, such as the difficulty in controlling nanowire (NW) size, disordered arrangement, and complicated fabrication process. Herein, ultra-thin gain media for plasmonic lasers below the cutoff size of the photonic mode are prepared using the polydimethylsiloxane-assisted imprinting. This method enables precise control over the size of the perovskite NW, with the minimum size achievable being 60 nm. As a result, the plasmonic lasing is achieved from the CsPbBr 3 NW-based device with a threshold as low as ∼49.13 μ J cm −2 and a Quality Factor ( Q ) of 1803 at room temperature, demonstrating its capability for achieving high-quality lasing. Meanwhile, a dual-pumping time-resolved fluorescence study suggests that the radiative recombination lifetime of CsPbBr 3 NWs is shortened by a factor of 10 due to the Purcell effect, confirming the plasmonic effect exhibited by the device. Furthermore, a plasmonic laser array is developed using this method, demonstrating the applicability of the imprinting method in complex graphic fabrication. This breakthrough provides a solution for the application of plasmonic laser arrays in optoelectronic integration.
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