论文标题

基于连续体的微型绑定状态的低阈值纳米仪

Low-threshold nanolasers based on miniaturized bound states in the continuum

论文作者

Ren, Yuhao, Li, Peishen, Liu, Zhuojun, Chen, Zihao, Chen, You-Ling, Peng, Chao, Liu, Jin

论文摘要

追求低阈值的紧凑型激光器已对最小的辐射损失最小的严格限制施加了严格的要求。最近已证明连续体(BICS)中的结合状态是沿着平面外向捕捉光线的有效机制,为低阈值激光器铺平了道路。迄今为止,由于没有平面光线限制,大多数报告的BIC激光器仍然笨重。在这项工作中,我们将BIC和光子带隙结合在一起,以实现三维(3D)的光线约束,称为微型(Mini-)BICS。加上量子点(QD)作为光学增益材料提供的3D载体约束,我们已经实现了高度压缩的活跃的BIC谐振器,其高质量($ q $)因子高达32500,这可以使单模连续波(CW)激光,并以80 W/cm $^{2 {2} $的最低阈值themose themose them themove(CW)。提示,在CW和脉冲激发下,我们的光子统计测量确认了从自发发射到刺激发射的相变的发生,进一步表明输入输出和线宽的常规标准不足以要求声称纳米级激光。我们的工作揭示了通向具有超低功耗的紧凑型BIC激光器的一条路径,并有可能增加腔量子电动力学(QEDS),非线性光学元件和集成光子学的应用。

The pursuit of compact lasers with low-thresholds has imposed strict requirements on tight light confinements with minimized radiation losses. Bound states in the continuum (BICs) have been recently demonstrated as an effective mechanism to trap light along the out-of-plane direction, paving the way to low-threshold lasers. To date, most reported BIC lasers are still bulky due to the absence of in-plane light confinement. In this work, we combine BICs and photonic band gaps to realize three-dimensional (3D) light confinements, as referred to miniaturized (mini-) BICs. Together with 3D carrier confinements provided by quantum dots (QDs) as optical gain materials, we have realized highly-compact active BIC resonators with a record-high quality ($Q$) factor up to 32500, which enables single-mode continuous wave (CW) lasing with the lowest threshold of 80 W/cm$^{2}$ among the reported BIC lasers. In addidtion, our photon statistics measurements under both CW and pulsed excitations confirm the occurence of the phase transition from spontaneous emission to stimulated emission, further suggesting that conventional criteria of input-output and linewidth are not sufficient for claiming nanoscale lasing. Our work reveal a via path towards compact BIC lasers with ultra-low power consumption and potentially boost the applications in cavity quantum electrodynamics (QEDs), nonlinear optics and integrated photonics.

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