most citedBroadband parametric amplification in AlGaAs-on-insulator nanowaveguides

1 citations · 1 across the 3 of their papers we have counts for

collaborators

6 papers

physics.optics2026

Harnessing thermo-optic dynamics for frequency-agile soliton microcombs

Yang Liu, Suwan Sun, Yueguang Zhou +8

Dissipative Kerr soliton microcombs enable compact and scalable frequency comb sources for precision metrology, spectroscopy, communications and coherent LiDAR, where broad and rel…

physics.optics20261 cited

Broadband parametric amplification in AlGaAs-on-insulator nanowaveguides

Yanjing Zhao, Chanju Kim, Yi Zheng +4

Optical amplification is critical for optical signal transmission. While the emergence of erbium-doped fiber amplifiers has revolutionized optical communications in fiber-based sys…

physics.optics2026

Engineered mode coupling in high-Q microresonators enables deterministic low-repetition-rate soliton microcombs

Yi Zheng, Yang Liu, Haoyang Tan +4

Soliton optical frequency combs have become key enablers for a wide range of applications, including telecommunications, optical atomic clocks, ultrafast distance measurements, dua…

physics.optics2025

Octave-spanning, deterministic single soliton generation in 4H-silicon carbide-on-insulator microring resonators

Yi Zheng, Liping Zhou, Chengli Wang +5

The miniaturization of self-referencing frequency comb systems enables emerging applications in metrology and spectroscopy. One major challenge in realizing the chip-scale self-ref…

physics.optics2025

Breaking the bandwidth-efficiency trade-off in soliton microcombs via mode coupling

Yang Liu, Andreas Jacobsen, Thibault Wildi +9

Dissipative Kerr solitons in optical microresonators have emerged as a powerful tool for compact and coherent frequency comb generation. Advances in nanofabrication have allowed pr…

physics.optics2025

Silicon Nitride Microresonator Raman Lasers

Yi Zheng, Haoyang Tan, Andreas Jacobsen +6

Silicon nitride (SiN) has emerged as a promising platform for integrated nonlinear photonics because of its low propagation loss, wide transparency window, and CMOS compatibility.…