论文标题

多模微波亚onon中的时空模式锁定和光子飞轮

Spatiotemporal mode-locking and photonic flywheel in multimode microresonators

论文作者

Nie, Mingming, Jia, Kunpeng, Xie, Yijun, Zhu, Shi-ning, Xie, Zhenda, Huang, Shu-Wei

论文摘要

耗散性的Kerr Soliton(DKS)频率梳子(也称为Microcombs)可以说是在腔内非线性光子学中创建了一个新领域,在理论,实验和技术研究之间具有强大的交叉侵入。时空模式锁定(STML)不仅为超快激光技术增加了新的自由度,而且还为实现具有光子学的模拟计算机和启发式优化器提供了新的见解。在这里,我们首次将DK和STML的原理结合起来,通过开发基于分级指数多模纤维(Grin-MMF)的未开发的超高质量fabry-perot微孔子来证明STML DKS。使用模式刺激的布里鲁因散射,我们可以选择性地激发本本征DKS或STML DKS。此外,我们展示了一种超动噪声微磅,可在基本梳子线宽和DKS时正时提高光子飞轮的性能。展示的基本梳状线宽为400 MHz和DKS的正时抖动,分别是25倍和2.5倍的改进,分别从最先进的情况下提高了25倍和2.5倍。我们的结果表明,Grin-MMF FP微孔子的潜力是用于高维非线性腔动力学和具有超高相干性和超级正时抖动的光子飞轮的理想测试床。

Dissipative Kerr soliton (DKS) frequency combs - also known as microcombs - have arguably created a new field in cavity nonlinear photonics, with a strong cross-fertilization between theoretical, experimental, and technological research. Spatiotemporal mode-locking (STML) not only add new degrees of freedom to ultrafast laser technology, but also provide new insights for implementing analogue computers and heuristic optimizers with photonics. Here, we combine the principles of DKS and STML for the first time to demonstrate the STML DKS by developing an unexplored ultrahigh-quality-factor Fabry-Perot microresonator based on graded index multimode fiber (GRIN-MMF). Using the intermodal stimulated Brillouin scattering, we can selectively excite either the eigenmode DKS or the STML DKS. Furthermore, we demonstrate an ultralow noise microcomb that enhances the photonic flywheel performance in both the fundamental comb linewidth and DKS timing jitter. The demonstrated fundamental comb linewidth of 400 mHz and DKS timing jitter of 500 attosecond represent improvements of 25x and 2.5x, respectively, from the state-of-the-art. Our results show the potential of GRIN-MMF FP microresonators as an ideal testbed for high-dimensional nonlinear cavity dynamics and photonic flywheel with ultrahigh coherence and ultralow timing jitter.

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