Analysis of microwave frequency combs generated by semiconductor lasers under hybrid optical injections

2015 ◽  
Author(s):  
Cheng-Ting Lin ◽  
Yi-Hua Wu ◽  
Yu-Shan Juan
2015 ◽  
pp. 579-582
Author(s):  
Peng Zhang ◽  
Tianshu Wang ◽  
Wanzhuo Ma ◽  
Lizhong Zhang ◽  
Shoufeng Tong ◽  
...  

2018 ◽  
Vol 55 (12) ◽  
pp. 121403
Author(s):  
蒋鑫 Jiang Xin ◽  
方捻 Fang Nian ◽  
王陆唐 Wang Lutang

Science ◽  
2021 ◽  
Vol 373 (6550) ◽  
pp. 99-103
Author(s):  
Chao Xiang ◽  
Junqiu Liu ◽  
Joel Guo ◽  
Lin Chang ◽  
Rui Ning Wang ◽  
...  

Silicon photonics enables wafer-scale integration of optical functionalities on chip. Silicon-based laser frequency combs can provide integrated sources of mutually coherent laser lines for terabit-per-second transceivers, parallel coherent light detection and ranging, or photonics-assisted signal processing. We report heterogeneously integrated laser soliton microcombs combining both indium phospide/silicon (InP/Si) semiconductor lasers and ultralow-loss silicon nitride (Si3N4) microresonators on a monolithic silicon substrate. Thousands of devices can be produced from a single wafer by using complementary metal-oxide-semiconductor–compatible techniques. With on-chip electrical control of the laser-microresonator relative optical phase, these devices can output single-soliton microcombs with a 100-gigahertz repetition rate. Furthermore, we observe laser frequency noise reduction due to self-injection locking of the InP/Si laser to the Si3N4 microresonator. Our approach provides a route for large-volume, low-cost manufacturing of narrow-linewidth, chip-based frequency combs for next-generation high-capacity transceivers, data centers, space and mobile platforms.


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