段叶珍 1杨昌盛 1,2,*李佳龙 1蒋葵 1[ ... ]徐善辉 1,2,3
作者单位
摘要
1 华南理工大学 发光材料与器件国家重点实验室,广东 广州 510640
2 广东省高性能光纤激光技术与装备工程技术研发中心,广东 珠海 519031
3 广东省光纤激光材料与应用技术重点实验室,广东 广州 510640
可调谐单频光纤激光器具有调谐范围宽、光信噪比高、线宽窄、噪声低和兼容性好等特点,在光谱学、光学探测、光学传感、光纤通信等领域有着重要的应用价值,引起了国内外研究者的广泛关注。简单介绍了可调谐单频光纤激光的调谐和选模关键技术,对1.0、1.5、2.0 μm和中红外等不同波段的可调谐单频光纤激光器进行了总结与归纳,综述了其国内外研究现状,并展示了其在调谐范围、激光线宽、光信噪比、输出功率、输出功率平坦度等性能指标方面取得的成果。此外,结合笔者课题组近年来在可调谐单频光纤激光器方面的研究工作,介绍了基于复合腔结构实现可调谐单频光纤激光的最新进展,并展望了可调谐单频光纤激光器的未来发展趋势。
可调谐 单频 光纤激光器 滤波器 tunable single-frequency fiber laser filter 
红外与激光工程
2022, 51(6): 20220119
作者单位
摘要
1 北京邮电大学 电子工程学院, 北京100089
2 桂林电子科技大学 信息与通信学院, 广西 桂林 541004
3 中国电子科技集团公司 第三十四研究所, 广西 桂林541004
针对空间激光骨干网中卫星链路采用高级在轨系统(AOS)帧进行数据传输、星上资源有限和数据传输时延较长等特点, 为了在卫星光网络中实现标签交换和流量工程, 首先对标准的基于路由受限标签分发协议(CR-LDP)进行了改进, 包括对协议消息大小设置定长, 设计面向无连接的传输层协议, 减小协议开销和对双向标签交换路径(LSP)的建立流程进行改进, 然后进行了软件仿真和硬件测试。结果表明: 改进后的CR-LDP在建链时资源消耗更小, 支持双向LSP建立且流程简单有效。
卫星光网络 星间激光链路 标签分发协议 流量工程 satellite optical network, intersatellite optical VxWorks 
光通信技术
2022, 46(4): 32
杨昌盛 1,3岑旭 1徐善辉 1,2,3杨中民 1,2,3,4,*
作者单位
摘要
1 华南理工大学发光材料与器件国家重点实验室, 广东 广州 510640
2 华南理工大学物理与光电学院, 广东 广州 510640
3 广东省特种光纤材料与器件工程技术研究开发中心, 广东 广州 510640
4 华南理工大学广东省光纤激光材料与应用技术重点实验室, 广东 广州 510640
单频光纤激光器在激光**、激光雷达、空间激光通信、相干光通信、高精度光谱测量、引力波探测等领域有着广泛的应用前景,受到了研究者的极大关注。从1.0,1.5,2.0 μm三种典型工作波段进行归类,综述了单频光纤激光器的国内外研究现状,内容涵盖了单频光纤激光产生、噪声抑制、线宽压窄、连续与脉冲单频激光放大等技术。此外,结合了本课题组在单频光纤激光器方面的研究工作,着重介绍了基于单振荡器和主振荡功率放大器结构的单频光纤激光器近年来的研究进展,并展望了单频光纤激光器的未来发展方向。
激光器 单频 光纤激光器 主振荡功率放大器 噪声抑制 
光学学报
2021, 41(1): 0114002
彭秀林 1,2杨昌盛 2,3,*邓华秋 1,2谭天奕 2,3[ ... ]徐善辉 1,2,3,4
作者单位
摘要
1 华南理工大学物理与光电学院, 广东 广州 510640
2 华南理工大学发光材料与器件国家重点实验室, 广东 广州 510640
3 广东省特种光纤材料与器件工程技术研究开发中心, 广东 广州 510640
4 广东省光纤激光材料与应用技术重点实验室, 广东 广州 510640
蓝绿光波段激光在激光显示、医疗诊断、光学数据存储以及水下通信等方面有着广阔的应用前景。尤其是蓝绿光单频激光具有较高的相干性,可广泛应用于高分辨率光谱、原子冷却和俘获、量子光学等领域,吸引了国内外学者的极大关注,发展十分迅速。本文介绍了实现蓝绿光单频激光的几种关键技术——二次谐波产生(SHG)手段获得蓝绿光单频激光、半导体材料直接激射产生蓝绿光单频激光等,总结了蓝绿光单频激光器的研究现状和发展方向。此外,结合本课题组在光纤基蓝绿光单频激光器方面的研究工作,着重介绍了基于近红外短波单频光纤激光器通过SHG手段获得蓝绿光单频激光的研究进展,并对蓝绿光单频激光技术的发展进行了展望。
激光光学 蓝绿光 单频 光纤激光 二次谐波产生 
激光与光电子学进展
2020, 57(7): 071606
Author Affiliations
Abstract
1 School of Physics and Optoelectronics, South China University of Technology, Guangzhou 510640, China
2 State Key Laboratory of Luminescent Materials and Devices and Institute of Optical Communication Materials, South China University of Technology, Guangzhou 510640, China
3 Guangdong Engineering Technology Research and Development Center of High-performance Fiber Laser Techniques and Equipment, Zhuhai 519031, China
4 Hengqin Firay Sci-Tech Company Ltd., Zhuhai 519031, China
5 Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices, Guangzhou 510640, China
6 Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, South China University of Technology, Guangzhou 510640, China
7 e-mail: pengfeima_scut@163.com
In this paper, a technique combining cascaded energy-transfer pumping (CEP) method and master-oscillator power-amplifier (MOPA) configuration is proposed for power scaling of 1.6-μm-band single-frequency fiber lasers (SFFLs), where the Er3+ ion has a limited gain. The CEP technique is fulfilled by coupling a primary signal light at 1.6 μm and a C-band auxiliary laser. The numerical model of the fiber amplifier with the CEP technique reveals that the energy transfer process involves the pump competition and the in-band particle transition between the signal and auxiliary lights. Moreover, for the signal emission, the population density in the upper level is enhanced, and the effective population inversion is achieved thanks to the CEP. A single-frequency MOPA laser at 1603 nm with an output power of 52.6 W and an improved slope efficiency of 30.4% is experimentally obtained through the CEP technique. Besides, a laser linewidth of 5.2 kHz and a signal-to-auxiliary laser ratio of 60.7 dB are obtained at the maximum output power. The proposed technique is anticipated to be promising for increasing the slope efficiency and power scaling for fiber lasers operating at L band.
Photonics Research
2020, 8(3): 03000414
Author Affiliations
Abstract
1 State Key Laboratory of Luminescent Materials and Devices, Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices, School of Materials Science and Technology, South China University of Technology, Guangzhou 510640, China
2 Guangdong Engineering Technology Research and Development Center of High-performance Fiber Laser Techniques and Equipments, Zhuhai 519031, China
Nd3+-doped fiber lasers at around 900 nm based on the 4F3/24I9/2 transition have obtained much research attention since they can be used as the laser sources for generating pure blue fiber lasers through the frequency doubling. Here, an all-fiber laser at 915 nm was realized by polarization-maintaining Nd3+-doped silica fiber. A net gain per unit length of up to 1.0 dB/cm at 915 nm was obtained from a 4.5 cm fiber, which to our best knowledge is the highest gain coefficient reported in this kind of silica fiber. The optical-to-optical conversion efficiency varies with the active fiber length and the reflectivity of the output fiber Bragg grating (FBG), presenting an optimal value of 5.3% at 5.1 cm fiber length and 70% reflectivity of the low reflection FBG. Additionally, the linear distributed Bragg reflector short cavity was constructed to explore its potential in realizing single-frequency 915 nm fiber laser. The measurement result of longitudinal-mode properties shows it is still multi-longitudinal mode laser operation with 40 mm laser cavity. These results indicate that the Nd3+-doped silica fiber could be used to realize all-fiber laser at 915 nm, which presents potential to be the seed source of high-power fiber laser.
fiber laser laser materials neodymium 
Chinese Optics Letters
2020, 18(1): 011401
Author Affiliations
Abstract
1 State Key Laboratory of Luminescent Materials and Devices and Institute of Optical Communication Materials, South China University of Technology, Guangzhou 510640, China
2 College of Optoelectronic Technology, Chengdu University of Information Technology, Chengdu 610225, China
3 Guangdong Engineering Technology Research and Development Center of High-Performance Fiber Laser Techniques and Equipments, Zhuhai 519031, China
4 Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices, Guangzhou 510640, China
5 Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques, South China University of Technology, Guangzhou 510640, China
A noise-sidebands-free and ultra-low relative intensity noise (RIN) 1.5 μm single-frequency fiber laser is demonstrated for the first time to our best knowledge. Utilizing a self-injection locking framework and a booster optical amplifier, the noise sidebands with relative amplitudes as high as 20 dB are completely suppressed. The RIN is remarkably reduced by more than 64 dB at the relaxation oscillation peak to retain below 150 dB/Hz in a frequency range from 75 kHz to 50 MHz, while the quantum noise limit is 152.9 dB/Hz. Furthermore, a laser linewidth narrower than 600 Hz, a polarization-extinction ratio of more than 23 dB, and an optical signal-to-noise ratio of more than 73 dB are acquired simultaneously. This noise-sidebands-free and ultra-low-RIN single-frequency fiber laser is highly competitive in advanced coherent light detection fields including coherent Doppler wind lidar, high-speed coherent optical communication, and precise absolute distance coherent measurement.
Lasers, fiber Lasers, single-mode Fluctuations, relaxations, and noise 
Photonics Research
2018, 6(4): 04000326
杨昌盛 1,*陈丹 1赵齐来 1冯洲明 1,2,3[ ... ]徐善辉 1
作者单位
摘要
1 华南理工大学发光材料与器件国家重点实验室, 广东 广州 510640
2 华南理工大学广东省特种光纤材料与器件工程技术研究开发中心, 广东 广州 510640
3 华南理工大学广东省光纤激光材料与应用技术重点实验室, 广东 广州 510640
介绍了2.0 μm波段掺铥连续单频光纤激光器的实验研究进展,以实现单频光纤激光器的关键技术为主线,总结了不同腔结构掺铥单频光纤激光振荡器的研究现状与发展方向。基于种子源主振荡功率放大(MOPA)结构进行了单频激光器功率放大,介绍了高功率掺铥单频光纤MOPA激光器的国内外研究进展。此外,介绍了本课题组在高掺杂铥锗酸盐玻璃光纤制作,2.0 μm波段单频光纤激光振荡器构建,以及单频激光功率放大方面的部分研究工作。
激光器 2.0 μm波段 单频激光器 掺铥锗酸盐玻璃光纤 主振荡功率放大 
中国激光
2017, 44(2): 0201006
湛彪 1,*徐善辉 1莫树培 1李灿 1[ ... ]杨中民 1,2
作者单位
摘要
1 华南理工大学光通信材料研究所 发光材料与器件国家重点实验室, 广东 广州 510640
2 广东省特种光纤材料与器件工程技术研究开发中心, 广东 广州 510640
报道了短腔单频分布布拉格反射(DBR)Er3+/Yb3+共掺磷酸盐光纤激光器中弛豫振荡噪声的抑制结果。基于光电反馈法,该噪声抑制电路将激光器1.15 MHz处弛豫振荡峰值幅度抑制26 dB至-121 dB/Hz;抑制后整个频带内相对强度噪声均低于-120 dB/Hz。实验结果表明,此噪声抑制回路对单频光纤激光器的其他光学性能无影响。
光纤光学 光纤激光器 单频 短腔分布布拉格反射结构 弛豫振荡 Er3+/Yb3+离子 磷酸盐光纤 
激光与光电子学进展
2013, 50(9): 090602
作者单位
摘要
华南理工大学光通信材料研究所发光材料与器件国家重点实验室, 广东 广州 510640
报道了一种输出波长为1080 nm的分布布拉格(Bragg)反射(DBR)短腔单频光纤激光器。该激光器采用1.4 cm长的自制高掺Yb3+磷酸盐玻璃光纤作为激光介质。最大输出功率达到90 mW,斜率效率为36.6%,1 h内功率抖动小于0.05%,边模抑制比达到69 dB,线宽小于10 kHz。在大于2 MHz高频段,相对强度噪声值小于-120 dB/Hz。
光纤光学 单频 磷酸盐光纤 Yb3+离子 短腔分布布拉格反射结构 
激光与光电子学进展
2012, 49(10): 100601

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