Ali Afridi Adnan, Weng Haizhong, McDermott Michael, Lu Qiaoyin, Guo Weihua, Donegan John F
Opt Express. 2023 Sep 25;31(20):33191-33199. doi: 10.1364/OE.499168.
Microresonator-based soliton crystals are a key recent advancement in the study of the rich nonlinear dynamics of soliton states. The soliton crystals are self-organized temporal pulses filling the microresonator cavity and have strong comb lines with wide spacing making them of great interest in many potential applications such as communication and meteorology. However, achieving a broad spectrum, tunable repetition rates, and high conversion efficiency are still a challenge. Here, we report the deterministic generation of versatile octave-spanning soliton crystals with various repetition rates via avoided mode crossings. In addition, we investigate the conversion efficiency of the obtained soliton crystals and achieved above ∼50% in one of the devices with a suitable coupling. Our results pave the way for accessing coherent broad and tunable on-chip soliton crystals, thus requiring a rigorous and viable microcavity design to engineer the desired mode coupling position.
基于微谐振器的孤子晶体是孤子态丰富非线性动力学研究中一项重要的近期进展。孤子晶体是填充微谐振器腔的自组织时间脉冲,具有间距宽的强梳状线,这使得它们在通信和气象学等许多潜在应用中极具吸引力。然而,实现宽光谱、可调重复率和高转换效率仍然是一个挑战。在此,我们报告了通过避免模式交叉确定性地生成具有各种重复率的多功能倍频程跨度孤子晶体。此外,我们研究了所获得的孤子晶体的转换效率,并在其中一个具有合适耦合的器件中实现了高于约50%的转换效率。我们的结果为获得相干、宽带且可调谐的片上孤子晶体铺平了道路,因此需要一种严谨且可行的微腔设计来设计所需的模式耦合位置。