罗亦杨 1,*†吴壮 1†刘雨松 2姚珧 1[ ... ]沈平 3
作者单位
摘要
1 重庆大学光电技术及系统教育部重点实验室,重庆 400044
2 华中科技大学光学与电子信息学院,湖北 武汉 430074
3 南方科技大学电子与电气工程系,广东 深圳 518055
随着超快激光应用需求的不断增长,激光控制技术正面临越来越多的挑战,超短脉冲操控研究亟待取得进一步的突破与发展。在激光器谐振腔增益、色散、损耗、非线性等效应共同作用下,多脉冲展现出比单脉冲更为丰富的动力学现象。研究表明其内部脉冲间距、相对相位、脉冲个数等参量具有高度可控性,为提升多脉冲的操控维度提供了新思路。本文从超快激光多脉冲的操控机理出发,介绍了多脉冲动力学、实时观测技术及激光器控制方法,重点综述了基于增益调制、偏振控制、色散调控、光机械效应等多脉冲操控方案,分析了各方案的性能,并展望了多脉冲操控技术的发展前景。
超快激光 超短脉冲 多脉冲束缚态 脉冲操控 锁模激光器 
激光与光电子学进展
2024, 61(3): 0314002
作者单位
摘要
1 华中科技大学光学与电子信息学院,下一代互联网接入系统国家工程研究中心,武汉光电国家研究中心,湖北 武汉 430074
2 华中科技大学未来技术学院,湖北 武汉 430074
分布式光纤传感器以光纤作为传输和传感融合的介质,具有高灵敏、全分布、大尺度、高分辨的独特优势,近年来受到多个应用领域研究人员的关注并逐步进入产业化。然而,现有普通单模光纤在传感信噪比与稳定性等方面仍存在局限性。以散射增强微结构特种光纤为传感载体,研究其分布式传感增效机理,介绍了其自动化、高效率刻写制备技术,并重点阐述了其分布式光纤传感技术研究进展与相关应用。进一步对散射增强微结构传感光纤的未来发展潜力及应用方向进行了展望。
传感器 分布式光纤传感 散射增强光纤 分布式声波传感 光频域反射技术 
光学学报
2024, 44(1): 0106008
作者单位
摘要
1 南京大学智能光感知与调控技术教育部重点实验室,江苏 南京 210023
2 华中科技大学光学与电子信息学院,湖北 武汉 430074
3 北京交通大学信息科学研究所,北京 100044
4 之江实验室光纤传感研究中心,浙江 杭州 311100
5 重庆大学光电技术及系统教育部重点实验室,重庆 400044
6 天津大学精密仪器与光电子工程学院,天津 300072
7 中国电力科学研究院有限公司,北京 100192
8 中国煤炭地质总局勘查研究总院,北京 100039
9 中油奥博(成都)科技有限公司,四川 成都 611731
10 中国科学院合肥物质科学研究院安徽光学精密机械研究所光子器件与材料安徽省重点实验室,安徽 合肥 230031
11 齐鲁工业大学(山东省科学院),山东省科学院激光研究所,山东 济南 250104
12 厦门大学航空航天学院,福建 厦门 361005
13 上海交通大学电子信息与电气工程学院,区域光纤通信网与新型光通信系统国家重点实验室,上海 200240
14 北京理工大学光电学院,信息光子技术工信部重点实验室,北京 100081
15 电子科技大学光纤传感与通信教育部重点实验室,四川 成都 611731
16 兰州大学土木工程与力学学院,甘肃 兰州 730000
我国大型基础设施的建设规模已多年位居世界之首,分布式光纤传感技术(DOFS)作为大型基础设施健康状态实时监测最有潜力的技术,近年来得到了迅速发展。针对DOFS在技术和应用的突破上面临的挑战,在介绍DOFS各技术基本工作原理、发展历史、现状以及典型应用原理和方案等的基础上,对其工作新机理、系统设计方案、研究发展方向等进行了阐述和讨论。
光纤光学 分布式光纤传感技术 光时域反射仪 光频域反射仪 干涉型分布式光纤传感 
光学学报
2024, 44(1): 0106001
邹萌 1,2肖何 1,2宋青果 1,2肖翔鹏 1,2[ ... ]闫志君 1,2,*
作者单位
摘要
1 华中科技大学光学与电子信息学院,湖北 武汉 430074
2 华中科技大学无锡研究院,江苏 无锡 214174
随着激光雷达、引力波探测和光学原子钟等新技术的兴起和研究的不断深入,光学精密测量覆盖的应用领域的广度和深度都在拓展,传统自由运转的激光器其稳定性难以满足高精密测量的应用要求。超窄线宽、超低噪声和长期稳定的光源已成为该领域迫切追求的目标。光纤激光器具备结构紧凑、易于集成化和极限线宽窄等特点,通过噪声抑制和稳频技术输出超稳定、超窄线宽激光,近年来逐渐成为热点研究方向。本文从光纤激光器的噪声理论出发,介绍了光纤激光器的噪声来源、分类及测试方法,基于噪声理论,分类总结了光纤激光器强度噪声和频率噪声不同抑制技术的原理、发展历程及现阶段进展,并对窄线宽光纤激光器的发展趋势做了展望。
激光器 超窄线宽激光 光纤激光器 噪声抑制 稳频技术 
激光与光电子学进展
2023, 60(15): 1500002
Author Affiliations
Abstract
1 School of Optical and Electronic Information, National Engineering Research Center for Next Generation Internet Access System (NGIA), Huazhong University of Science and Technology, Wuhan 430074, China
2 Hubei Key Laboratory of Genetics and Molecular Mechanisms of Cardiological Disorders, Division of Cardiology, Huazhong University of Science and Technology, Tongji Medical College, Tongji Hospital, Wuhan 430074, China
3 Huawei Technologies Co, Lt, Shenzhen 218129, China
4 Huazhong University of Science and Technology, HUST-Wuxi Research Institute, Wuxi 214174, China
5 Department of Electrical and Electronic Engineering, Southern University of Science and Technology, Shenzhen 518055, China
Automatic and continuous blood pressure monitoring is important for preventing cardiovascular diseases such as hypertension. The evaluation of medication effects and the diagnosis of clinical hypertension can both benefit from continuous monitoring. The current generation of wearable blood pressure monitors frequently encounters limitations with inadequate portability, electrical safety, limited accuracy, and precise position alignment. Here, we present an optical fiber sensor-assisted smartwatch for precise continuous blood pressure monitoring. A fiber adapter and a liquid capsule were used in the building of the blood pressure smartwatch based on an optical fiber sensor. The fiber adapter was used to detect the pulse wave signals, and the liquid capsule was used to expand the sensing area as well as the conformability to the body. The sensor holds a sensitivity of -213µw/kPa, a response time of 5 ms, and high reproducibility with 70,000 cycles. With the assistance of pulse wave signal feature extraction and a machine learning algorithm, the smartwatch can continuously and precisely monitor blood pressure. A wearable smartwatch featuring a signal processing chip, a Bluetooth transmission module, and a specially designed cellphone APP was also created for active health management. The performance in comparison with commercial sphygmomanometer reference measurements shows that the systolic pressure and diastolic pressure errors are -0.35 ± 4.68 mmHg and -2.54 ± 4.07 mmHg, respectively. These values are within the acceptable ranges for Grade A according to the British Hypertension Society (BHS) and the Association for the Advancement of Medical Instrumentation (AAMI). The smartwatch assisted with an optical fiber is expected to offer a practical paradigm in digital health.
PhotoniX
2023, 4(1): 21
Author Affiliations
Abstract
1 School of Optical and Electronic Information, Huazhong University of Science and Technology, Wuhan 430074, China
2 HUST-Wuxi Research Institute, Wuxi 214174, China
3 Guangdong Key Laboratory of Integrated Optoelectronics Intellisense, Department of Electrical and Electronic Engineering, Southern University of Science and Technology, Shenzhen 518055, China
4 Optics Valley Laboratory, Wuhan 430074, China
Optical fiber distributed acoustic sensing (DAS) based on phase-sensitive optical time domain reflectometry (φ-OTDR) is in great demand in many long-distance application fields, such as railway and pipeline safety monitoring. However, the DAS measurement distance is limited by the transmission loss of optical fiber and ultralow backscattering power. In this paper, a DAS system based on multispan relay amplification is proposed, where the bidirectional erbium-doped fiber amplifier (EDFA) is designed as a relay module to amplify both the probe light and the backscattering light. In the theoretical noise model, the parameters of our system are carefully analyzed and optimized for a longer sensing distance, including the extinction ratio (ER), span number, span length, and gain of erbium-doped fiber amplifiers. The numerical simulation shows that a bidirectional EDFA relay DAS system can detect signals over 2500 km, as long as the span number is set to be more than 100. To verify the effectiveness of the scheme, a six-span coherent-detection-based DAS system with an optimal design was established, where the cascaded acoustic-optic modulators (AOMs) were used for a high ER of 104 dB. The results demonstrate that the signal at the far end of 300.2 km can be detected and recovered, achieving a high signal-to-noise ratio of 59.6 dB and a high strain resolution of 51.8pε/Hz at 50 Hz with a 20 m spatial resolution. This is, to the best of our knowledge, a superior DAS sensing distance with such a high strain resolution.
Photonics Research
2023, 11(6): 968
Author Affiliations
Abstract
1 Guangdong Key Laboratory of Integrated Optoelectronics Intellisense, Department of Electronic and Electrical Engineering, Southern University of Science and Technology, Shenzhen 518055, China
2 Institute for Infocomm Research (I2R), Agency for Science, Technology and Research (A*STAR), 1 Fusionopolis Way, #21-01, Connexis South Tower, Singapore 138632, Singapore
3 School of Electrical and Electronic Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore
4 School of Optical and Electronic Information, National Engineering Laboratory for Next Generation Internet Access System, Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan 430074, China
5 Key Laboratory of Bionic Engineering of Ministry of Education, Jilin University, Changchun 130022, China
6 Key Laboratory of Optoelectronic Devices and Systems of Ministry of Education/Guangdong Province, College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China
7 Shenzhen Key Laboratory of Photonic Devices and Sensing Systems for Internet of Things, Guangdong and Hong Kong Joint Research Centre for Optical Fibre Sensors, Shenzhen University, Shenzhen 518060, China
8 Guangdong Laboratory of Artificial Intelligence and Digital Economy (SZ), Shenzhen 518107, China
9 Guangdong Provincial Key Laboratory of Information Photonics Technology, School of Information Engineering, Guangdong University of Technology, Guangzhou 510006, China
10 Department of Electrical & Computer Engineering, Boston University, Boston 02215, USA
11 Pengcheng Laboratory, Shenzhen 518055, China
Optical fiber technology has changed the world by enabling extraordinary growth in world-wide communications and sensing. The rapid development and wide deployment of optical fiber sensors are driven by their excellent sensing performance with outstanding flexibility, functionality, and versatility. Notably, the research on specialty optical fibers is playing a critical role in enabling and proliferating the optical fiber sensing applications. This paper overviews recent developments in specialty optical fibers and their sensing applications. The specialty optical fibers are reviewed based on their innovations in special structures, special materials, and technologies to realize lab in/on a fiber. An overview of sensing applications in various fields is presented. The prospects and emerging research areas of specialty optical fibers are also discussed.
specialty optical fibers photonic crystal fiber multifunctional multi-material fibers lab in/on fiber 
Opto-Electronic Science
2023, 2(2): 220025
孙琪真 1,2,3,*李豪 1,2范存政 1,2贺韬 1,2[ ... ]闫志君 1,2
作者单位
摘要
1 华中科技大学光学与电子信息学院,武汉光电国家研究中心,湖北 武汉 430074
2 下一代互联网接入系统国家工程实验室,湖北 武汉 430074
3 华中科技大学无锡研究院,江苏 无锡 214174
基于相位敏感光时域反射技术的分布式声波传感(DAS)系统可实现大范围分布式的声波探测,近年来,在油气勘探、地质成像、管道安全、周界安防等应用领域受到研究关注。本文论述了光纤DAS技术的传感原理,分析了单模光纤的衰落机理和性能瓶颈。针对此问题,分别介绍了多种散射增强光纤的增效机理与声波传感性能。进一步,围绕微结构散射增强光纤DAS系统,综述了其近年来的技术与应用进展,并展望了其未来可能的发展方向。
光纤光学 光纤传感 相敏光时域反射计 分布式声波传感 散射增强光纤 
激光与光电子学进展
2022, 59(21): 2100001
Author Affiliations
Abstract
1 School of Optical and Electronic Information & National Engineering Laboratory for Next Generation Internet Access System (NGIA) & Wuhan National Laboratory for Optoelectronics (WNLO), Huazhong University of Science and Technology, Wuhan 430074, China
2 Aston Institute of Photonic Technologies, Aston University, Birmingham B4 7ET, UK
A microfiber with large evanescent field encapsulated in PDMS is proposed and demonstrated for ultrasound sensing. The compact size and large evanescent field of microfiber provide an excellent platform for the interaction between optical signal and ultrasound wave, exhibiting a high sensitivity of 3.5 mV/kPa, which is approximately 10 times higher than the single-mode fiber sensor. Meanwhile, a phase feedback stabilization module is introduced into the coherent demodulation system for long-term stable measurement. In addition, a photoacoustic tomography experiment with the microfiber ultrasound sensor is implemented to verify the excellent performance on imaging, with the depth of 12 mm, the highest lateral resolution of 65 μm and axial resolution of 250 μm, respectively. The highly sensitive microfiber ultrasound sensor provides a competitive alternative for various applications, such as industrial non-destructive testing, biomedical ultrasound and photoacoustic imaging.A microfiber with large evanescent field encapsulated in PDMS is proposed and demonstrated for ultrasound sensing. The compact size and large evanescent field of microfiber provide an excellent platform for the interaction between optical signal and ultrasound wave, exhibiting a high sensitivity of 3.5 mV/kPa, which is approximately 10 times higher than the single-mode fiber sensor. Meanwhile, a phase feedback stabilization module is introduced into the coherent demodulation system for long-term stable measurement. In addition, a photoacoustic tomography experiment with the microfiber ultrasound sensor is implemented to verify the excellent performance on imaging, with the depth of 12 mm, the highest lateral resolution of 65 μm and axial resolution of 250 μm, respectively. The highly sensitive microfiber ultrasound sensor provides a competitive alternative for various applications, such as industrial non-destructive testing, biomedical ultrasound and photoacoustic imaging.
ultrasound sensor microfiber photoacoustic tomography 
Opto-Electronic Advances
2022, 5(6): 200076
孙琪真 1,2,3,*杨留洋 1,2,3徐栋宸 1,2陈庚 1,2[ ... ]闫志君 1,2,3
作者单位
摘要
1 华中科技大学光学与电子信息学院,湖北 武汉 430074
2 下一代互联网接入系统国家工程研究中心,湖北 武汉 430074
3 华中科技大学无锡研究院,江苏 无锡 214174
光纤超声换能器是近年来迅速发展的一种新型超声检测技术,它具有光纤传感器小尺寸和易复用组网的特点。相比于传统超声换能器技术,光纤超声换能器表现出更高的灵敏度、更大的带宽和更好的抗电磁干扰性能,在高分辨率成像、工业无损检测和局部放电等领域具有巨大的应用潜力。光纤超声换能器主要涉及光纤超声发射和光纤超声探测技术,本文综述了这几类技术的机理和发展现状,并总结了光纤超声检测技术的应用场景和面临的技术挑战。
传感器 光纤换能器 光声效应 超声发射 超声检测 医学成像 无损检测 局部放电 
中国激光
2022, 49(12): 1210001

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