杨安平 1,2,3,4周鸿猷 1,2,3,4方婕 1,2,3,4苏斯杰 1,2,3,4[ ... ]甘久林 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 510641
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 510641
3 广东省光纤激光材料与应用技术重点实验室,广东 广州 510641
4 华南理工大学材料科学与工程学院,广东 广州 510641
为提高接触式柔性光纤温度传感器的稳定性和抗干扰性,提出了一种基于荧光强度比技术解调方法的上转换荧光纳米粒子掺杂的柔性荧光光纤温度传感器。稀土离子掺杂的复合柔性光纤受激发射出稳定荧光,依靠上转换纳米粒子热耦合能级对温度的依赖特性,热耦合能级对应的中心荧光峰的强度随着温度的变化而变化。所提柔性光纤温度传感器将掺杂Er3+的热耦合能级对应的中心荧光峰强度的比值作为温度的表征值,且其温度响应表现为热增强型,即荧光强度随着温度的升高而增强。实验结果表明柔性光纤温度传感器表现出强稳定性和强抗干扰性,同时具备良好的柔性和变形能力、高灵敏度和可重复性,最大绝对灵敏度为0.0038 ℃-1、最大相对灵敏度为1.29 %/℃。
荧光强度比技术 热耦合能级 柔性光纤温度传感器 抗干扰性 
激光与光电子学进展
2023, 60(13): 1316005
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

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