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基于法布里-珀罗-回音壁模式混合腔耦合的单模纳米激光器。

Single-mode nanolasers based on FP-WGM hybrid cavity coupling.

作者信息

Ullah Salman, Zhuge Minghua, Zhang Liang, Fu Xiang, Ma Yaoguang, Yang Qing

机构信息

State Key Laboratory of Extreme Photonics and Instrumentation, College of Optical Science and Engineering, Zhejiang University, Hangzhou 310027, People's Republic of China.

ZJU-Hangzhou Global Scientific and Technological Innovation Center, Hangzhou 311215, People's Republic of China.

出版信息

Nanotechnology. 2024 Feb 29;35(20). doi: 10.1088/1361-6528/ad28d4.

Abstract

As an idealized light source, semiconductor nanowire (NW) lasers have been extensively studied due to its potential applications in many fields such as optoelectronics, nanophononics, optical communication, signal processing, and displays. In this letter, we proposed a novel approach to realize a single-mode nanolaser by forming an Fabry-Perot whispering gallery mode (FP-WGM) hybrid nanocavity between two cross-contact CdS NWs, i.e.and-NW. In our method,-NW supports the regular FP oscillation in the axis direction while the cross section of-NW provides a ultrasmall WGM nanocavity with a higher-factor and mode election which confirms the specific single mode can be excited. Experimentally, single-mode lasing emission centered at 517 nm was obtained with full width at half maximum of 0.08 nm and lasing threshold of ∼50 kW cm. The suggested designing skills projected a general strategy for lasing mode regulation and single-mode realization. The single-mode low-threshold lasing strategy in coupled NWs may open a new avenue for practical applications of NW lasers and further trigger other photonic devices at a visible range.

摘要

作为一种理想化的光源,半导体纳米线(NW)激光器因其在光电子学、纳米光子学、光通信、信号处理和显示等众多领域的潜在应用而受到广泛研究。在本信函中,我们提出了一种新颖的方法,通过在两根交叉接触的CdS NW(即 -NW)之间形成法布里 - 珀罗回音壁模式(FP-WGM)混合纳米腔来实现单模纳米激光器。在我们的方法中,-NW在轴向上支持常规的FP振荡,而 -NW的横截面提供了一个具有更高品质因数和模式选择的超小WGM纳米腔,这证实了特定的单模可以被激发。实验上,获得了中心波长为517 nm的单模激光发射,半高宽为0.08 nm,激光阈值约为50 kW/cm 。所建议的设计技巧为激光模式调控和单模实现提供了一种通用策略。耦合NW中的单模低阈值激光策略可能为NW激光器的实际应用开辟一条新途径,并进一步触发可见光范围内的其他光子器件。

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