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 rea...
Dissipative Kerr solitons are self-sustaining optical wavepackets in resonators. They use the Kerr n...
Chip-scale optical frequency combs have attracted significant research interest and can be used in a...
This work was supported by the National Science Center in Poland, by Grant Nos. 2016/23/N/ST3/01350 ...
Laser frequency combs are enabling some of the most exciting scientific endeavours in the twenty-fir...
Dissipative solitons (DSs) can be generated in microresonators featuring Kerr nonlinearities via con...
Optical-frequency combs, that is spectra of equidistant coherent optical lines, have revolutionized ...
Dissipative Kerr solitons are localized structures that exist in nonlinear optical cavities. They le...
Microcombs provide a path to broad-bandwidth integrated frequency combs with low power consumption, ...
We demonstrate a microcomb with power conversion efficiency exceeding 50%. It originates from a sing...
Optical frequency combs are optical sources, which spectrum consists of a series of equally spaced n...
The microresonator comb (microcomb) is a laser source that generates equally spaced coherent lines i...
Like rulers of light, optical frequency combs consist of hundreds to millions of coherent laser line...
Microcavity-based frequency combs, or ‘microcombs’ have enabled many fundamental breakthroughs throu...
Soliton microcombs are helping to advance the miniaturization of a range of comb systems. These comb...
Understanding noise dynamics in frequency combs is crucial for applications. Here, the authors study...
Dissipative Kerr solitons are self-sustaining optical wavepackets in resonators. They use the Kerr n...
Chip-scale optical frequency combs have attracted significant research interest and can be used in a...
This work was supported by the National Science Center in Poland, by Grant Nos. 2016/23/N/ST3/01350 ...
Laser frequency combs are enabling some of the most exciting scientific endeavours in the twenty-fir...
Dissipative solitons (DSs) can be generated in microresonators featuring Kerr nonlinearities via con...
Optical-frequency combs, that is spectra of equidistant coherent optical lines, have revolutionized ...
Dissipative Kerr solitons are localized structures that exist in nonlinear optical cavities. They le...
Microcombs provide a path to broad-bandwidth integrated frequency combs with low power consumption, ...
We demonstrate a microcomb with power conversion efficiency exceeding 50%. It originates from a sing...
Optical frequency combs are optical sources, which spectrum consists of a series of equally spaced n...
The microresonator comb (microcomb) is a laser source that generates equally spaced coherent lines i...
Like rulers of light, optical frequency combs consist of hundreds to millions of coherent laser line...
Microcavity-based frequency combs, or ‘microcombs’ have enabled many fundamental breakthroughs throu...
Soliton microcombs are helping to advance the miniaturization of a range of comb systems. These comb...
Understanding noise dynamics in frequency combs is crucial for applications. Here, the authors study...
Dissipative Kerr solitons are self-sustaining optical wavepackets in resonators. They use the Kerr n...
Chip-scale optical frequency combs have attracted significant research interest and can be used in a...
This work was supported by the National Science Center in Poland, by Grant Nos. 2016/23/N/ST3/01350 ...