物理
光子学
耗散系统
激光器
双原子分子
平坦度(宇宙学)
非线性光学
非线性系统
宽带
光学
光电子学
量子力学
分子
宇宙学
作者
Óskar B. Helgason,Francisco R. Arteaga-Sierra,Zhichao Ye,Krishna Twayana,Peter A. Andrekson,Magnus Karlsson,Jochen Schröder,Víctor Torres–Company
出处
期刊:Nature Photonics
[Springer Nature]
日期:2021-01-25
卷期号:15 (4): 305-310
被引量:126
标识
DOI:10.1038/s41566-020-00757-9
摘要
Many physical systems display quantized energy states. In optics, interacting resonant cavities show a transmission spectrum with split eigenfrequencies, similar to the split energy levels that result from interacting states in bonded multi-atomic—that is, molecular—systems. Here, we study the nonlinear dynamics of photonic diatomic molecules in linearly coupled microresonators and demonstrate that the system supports the formation of self-enforcing solitary waves when a laser is tuned across a split energy level. The output corresponds to a frequency comb (microcomb) whose characteristics in terms of power spectral distribution are unattainable in single-mode (atomic) systems. Photonic molecule microcombs are coherent, reproducible and reach high conversion efficiency and spectral flatness while operated with a laser power of a few milliwatts. These properties can favour the heterogeneous integration of microcombs with semiconductor laser technology and facilitate applications in optical communications, spectroscopy and astronomy. When a laser is tuned across a split energy level, photonic diatomic molecules in two linearly coupled microresonators support the formation of self-enforcing solitary waves, featuring coherent, tunable and reproducible microcombs with up to ten times higher net conversion efficiency than the state of the art.
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