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Noise canceled graphene-microcavity fiber laser sensor for ultrasensitive gas detection

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【作者】 YUCHEN WANGYIWEI LIYICHENG LIHAO ZHANGZIHAN LIUYANHONG GUOZEPING WANGJUN HEXUHAN GUOYIPING WANGBAICHENG YAO

【Author】 YUCHEN WANG;YIWEI LI;YICHENG LI;HAO ZHANG;ZIHAN LIU;YANHONG GUO;ZEPING WANG;JUN HE;XUHAN GUO;YIPING WANG;BAICHENG YAO;Key Laboratory of Optical Fiber Sensing and Communications (Ministry of Education),University of Electronic Science and Technology of China;Guangdong and Hong Kong Joint Research Centre for Optical Fiber Sensors,Shenzhen University;State Key Laboratory of Advanced Optical Communication Systems and Networks,Shanghai Jiao Tong University;

【通讯作者】 BAICHENG YAO;

【机构】 Key Laboratory of Optical Fiber Sensing and Communications (Ministry of Education),University of Electronic Science and Technology of ChinaGuangdong and Hong Kong Joint Research Centre for Optical Fiber Sensors,Shenzhen UniversityState Key Laboratory of Advanced Optical Communication Systems and Networks,Shanghai Jiao Tong University

【摘要】 Optical microcavities offer a promising platform for highly efficient light–matter interactions. Recently, the combination of microresonators and 2D materials in the nanoscale has further enriched the optoelectronics of microcavity geometries, spurring broad advances including lasers, nonlinear converters, modulators, and sensors. Here,we report the concept of compact dual-laser cogeneration in a graphene-microcavity fiber, which offers a way to cancel the optical common mode noises. Driven by a single 980 nm pump, orthogonally polarized laser lines are generated in a pair of degeneracy breaking modes. The two laser lines produce a heterodyne beat note at 118.96 MHz, with frequency noise down to 200 Hz2∕Hz at 1 MHz offset, demonstrating a linewidth of 930 Hz in vacuum. This compact device enables on-line and label-free NH3 gas detection with high resolution,realizing a detection limit on a single pmol/L level, and a capability to quantitatively trace gas–graphene interactions. Such a combination of graphene optoelectronics and microcavity photonics demonstrates a novel physical paradigm for microlaser control and offers a new scheme for in situ chemical sensing.

【Abstract】 Optical microcavities offer a promising platform for highly efficient light–matter interactions. Recently, the combination of microresonators and 2D materials in the nanoscale has further enriched the optoelectronics of microcavity geometries, spurring broad advances including lasers, nonlinear converters, modulators, and sensors. Here,we report the concept of compact dual-laser cogeneration in a graphene-microcavity fiber, which offers a way to cancel the optical common mode noises. Driven by a single 980 nm pump, orthogonally polarized laser lines are generated in a pair of degeneracy breaking modes. The two laser lines produce a heterodyne beat note at 118.96 MHz, with frequency noise down to 200 Hz2∕Hz at 1 MHz offset, demonstrating a linewidth of 930 Hz in vacuum. This compact device enables on-line and label-free NH3 gas detection with high resolution,realizing a detection limit on a single pmol/L level, and a capability to quantitatively trace gas–graphene interactions. Such a combination of graphene optoelectronics and microcavity photonics demonstrates a novel physical paradigm for microlaser control and offers a new scheme for in situ chemical sensing.

【关键词】 photonicscanceladvancesenrichedbreakingquantitativelyoffsetlabelpolarizedparadigm
【基金】 National Key Research and Development Program of China (2021YFB2800602);National Natural Science Foundation of China (61975025, U2130106);State Key Laboratory Open Program (2022GZKF002)
  • 【文献出处】 Photonics Research ,光子学研究 , 编辑部邮箱 ,2023年08期
  • 【分类号】TP212
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