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Main Authors: Tan, Haoyang, Zheng, Yi, Lu, Xiyuan, Liu, Yang, Jacobsen, Andreas, Yvind, Kresten, Srinivasan, Kartik, Pu, Minhao
Format: Preprint
Published: 2026
Subjects:
Online Access:https://arxiv.org/abs/2603.14044
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author Tan, Haoyang
Zheng, Yi
Lu, Xiyuan
Liu, Yang
Jacobsen, Andreas
Yvind, Kresten
Srinivasan, Kartik
Pu, Minhao
author_facet Tan, Haoyang
Zheng, Yi
Lu, Xiyuan
Liu, Yang
Jacobsen, Andreas
Yvind, Kresten
Srinivasan, Kartik
Pu, Minhao
contents Optical microcombs generated in high-Q microresonators are promising chip-scale light sources for applications ranging from optical communications to spectroscopy and metrology. However, thermo-optic instabilities remain a major obstacle to reliable soliton access. Self-cooling using auxiliary modes can stabilize the intracavity power, yet part of the power is continuously allocated to thermal compensation rather than comb generation, thereby limiting comb power and bandwidth. Here we propose a thermal compensation scheme based on dynamic polarization control. During soliton initiation, a fraction of the pump is coupled to an orthogonally polarized mode to provide self-cooling and ensure reliable soliton access. After soliton formation, polarization rotation and pump tuning transfer this cooling power to the comb-generating mode, enabling efficient single-soliton operation. Using this approach, we experimentally demonstrate a broadband 108-GHz-FSR single-soliton microcomb spanning over 450 nm, together with approximately 39% improvement in the 20-dB bandwidth and 60% increase in comb power relative to the static self-cooling configuration. This dynamic polarization-based thermal compensation enables efficient use of available laser power and provides a practical route to high-performance soliton microcombs in platforms with strong thermo-optic effects.
format Preprint
id arxiv_https___arxiv_org_abs_2603_14044
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Thermally accessible broadband soliton microcombs in silicon carbide enabled by dynamic polarization control
Tan, Haoyang
Zheng, Yi
Lu, Xiyuan
Liu, Yang
Jacobsen, Andreas
Yvind, Kresten
Srinivasan, Kartik
Pu, Minhao
Optics
Optical microcombs generated in high-Q microresonators are promising chip-scale light sources for applications ranging from optical communications to spectroscopy and metrology. However, thermo-optic instabilities remain a major obstacle to reliable soliton access. Self-cooling using auxiliary modes can stabilize the intracavity power, yet part of the power is continuously allocated to thermal compensation rather than comb generation, thereby limiting comb power and bandwidth. Here we propose a thermal compensation scheme based on dynamic polarization control. During soliton initiation, a fraction of the pump is coupled to an orthogonally polarized mode to provide self-cooling and ensure reliable soliton access. After soliton formation, polarization rotation and pump tuning transfer this cooling power to the comb-generating mode, enabling efficient single-soliton operation. Using this approach, we experimentally demonstrate a broadband 108-GHz-FSR single-soliton microcomb spanning over 450 nm, together with approximately 39% improvement in the 20-dB bandwidth and 60% increase in comb power relative to the static self-cooling configuration. This dynamic polarization-based thermal compensation enables efficient use of available laser power and provides a practical route to high-performance soliton microcombs in platforms with strong thermo-optic effects.
title Thermally accessible broadband soliton microcombs in silicon carbide enabled by dynamic polarization control
topic Optics
url https://arxiv.org/abs/2603.14044