A mid-infrared Brillouin laser using ultra-high-Q on-chip resonators

谐振器 激光器 光电子学 布里渊区 材料科学 炸薯条 红外线的 光学 电信 物理 计算机科学
作者
Kiyoung Ko,Daewon Suk,Dohyeong Kim,Soobong Park,Betül Sen,Dae‐Gon Kim,Yingying Wang,Shixun Dai,Xunsi Wang,Rongping Wang,Byung Jae Chun,Kwang-Hoon Ko,Peter T. Rakich,Duk‐Yong Choi,Hansuek Lee
出处
期刊:Nature Communications [Nature Portfolio]
卷期号:16 (1) 被引量:2
标识
DOI:10.1038/s41467-025-58010-2
摘要

Ultra-high-Q optical resonators have facilitated advancements in on-chip photonics by harnessing nonlinear functionalities. While these breakthroughs, primarily focused on the near-infrared region, have extended interest to longer wavelengths holding importance for molecule science, the absence of ultra-high-Q resonators in this region remains a significant challenge. Here, we have developed on-chip microresonators with a remarkable Q-factor of 38 million at 3.86 μm wavelength, surpassing previous records by over 30 times. Employing innovative fabrication techniques, including spontaneous formation of light-guiding geometries with internal multilayer structures during material deposition, major loss factors, such as airborne-chemical absorption, were investigated and addressed. This allowed us to access the fundamental loss performance demonstrated by chalcogenide glass fibers. Leveraging this resonator, we demonstrated an on-chip Brillouin lasing in the mid-infrared with a 91.9 μW threshold power and an 83.5 Hz Schawlow-Townes linewidth. Our results showcase the effective integration of cavity-enhanced optical nonlinearities into on-chip mid-infrared photonics. Here the authors developed on-chip microresonators with a remarkable Q-factor of 38 million and demonstrated on-chip Brillouin lasing in the mid-infrared. These results highlight opportunities to create more compact and efficient platforms for molecular science.

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