Integrated soliton microcombs beyond the turnkey limit

Fuente: arXiv
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Autori principali: Wang, Ze, Xu, Tianyu, Wang, Yuanlei, Zhu, Kaixuan, Luo, Xinrui, Luo, Haoyang, Wang, Junqi, Ni, Bo, Yang, Yiwen, Gong, Qihuang, Xiao, Yun-Feng, Li, Bei-Bei, Yang, Qi-Fan
Natura: Preprint
Pubblicazione: 2025
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author Wang, Ze
Xu, Tianyu
Wang, Yuanlei
Zhu, Kaixuan
Luo, Xinrui
Luo, Haoyang
Wang, Junqi
Ni, Bo
Yang, Yiwen
Gong, Qihuang
Xiao, Yun-Feng
Li, Bei-Bei
Yang, Qi-Fan
author_facet Wang, Ze
Xu, Tianyu
Wang, Yuanlei
Zhu, Kaixuan
Luo, Xinrui
Luo, Haoyang
Wang, Junqi
Ni, Bo
Yang, Yiwen
Gong, Qihuang
Xiao, Yun-Feng
Li, Bei-Bei
Yang, Qi-Fan
contents Soliton microcombs generated in optical microresonators are accelerating the transition of optical frequency combs from laboratory instruments to industrial platforms. Self injection locking (SIL) enables direct driving of soliton microcombs by integrated lasers, providing turnkey initiation and improved coherence, but it also pins the pump close to resonance, limiting both spectral span and tuning flexibility. Here we theoretically and experimentally demonstrate that introducing a thermally tunable auxiliary microresonator extends the bandwidth of SIL soliton microcombs. By engineering hybridization of the pumped resonance, we achieve deterministic access to single soliton states and then push operation into a far detuned regime inaccessible to direct initiation. The resulting combs reach a near 200 nm span at a 25 GHz repetition rate, while preserving the SIL-enabled noise suppression throughout. Moreover, the added degree of freedom afforded by the coupled resonator architecture enables orthogonal control of the comb's repetition rate and center frequency. These advances expand the spectral reach and controllability of integrated soliton microcombs for information processing and precision metrology.
format Preprint
id arxiv_https___arxiv_org_abs_2511_06909
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Integrated soliton microcombs beyond the turnkey limit
Wang, Ze
Xu, Tianyu
Wang, Yuanlei
Zhu, Kaixuan
Luo, Xinrui
Luo, Haoyang
Wang, Junqi
Ni, Bo
Yang, Yiwen
Gong, Qihuang
Xiao, Yun-Feng
Li, Bei-Bei
Yang, Qi-Fan
Optics
Soliton microcombs generated in optical microresonators are accelerating the transition of optical frequency combs from laboratory instruments to industrial platforms. Self injection locking (SIL) enables direct driving of soliton microcombs by integrated lasers, providing turnkey initiation and improved coherence, but it also pins the pump close to resonance, limiting both spectral span and tuning flexibility. Here we theoretically and experimentally demonstrate that introducing a thermally tunable auxiliary microresonator extends the bandwidth of SIL soliton microcombs. By engineering hybridization of the pumped resonance, we achieve deterministic access to single soliton states and then push operation into a far detuned regime inaccessible to direct initiation. The resulting combs reach a near 200 nm span at a 25 GHz repetition rate, while preserving the SIL-enabled noise suppression throughout. Moreover, the added degree of freedom afforded by the coupled resonator architecture enables orthogonal control of the comb's repetition rate and center frequency. These advances expand the spectral reach and controllability of integrated soliton microcombs for information processing and precision metrology.
title Integrated soliton microcombs beyond the turnkey limit
topic Optics
url https://arxiv.org/abs/2511.06909