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采用棒管法制备了低羟基含量的Tm~(3+)/Ho~(3+)共掺氟碲酸盐微结构光纤。当使用波长为1 560 nm的激光器泵浦Tm~(3+)/Ho~(3+)共掺光纤时,处于Tm~(3+)基态3H6的电子被激发至3F4能级,进一步通过Tm~(3+)和Ho~(3+)间的能量传递过程3F4→3H6(Tm~(3+)):5I8→5I7(Ho~(3+))(能量失配为745 cm-1)布居Ho~(3+)的5I7能级,5I7能级上的电子向5I8能级跃迁发射出2.1μm的光。使用1 560 nm光纤激光器作为泵浦源,18 cm长的Tm~(3+)/Ho~(3+)氟碲酸盐微结构光纤作为增益介质,获得了波长为2 063 nm的激光输出。所得激光的斜率效率为12.9%,激光阈值为163 m W,未饱和的最大输出功率为40 m W。研究结果表明,Tm~(3+)/Ho~(3+)共掺氟碲酸盐微结构光纤可用于制作2.1μm光纤激光器。  相似文献   
2.
为获得较大展宽量的光纤器件,在相位掩模版刻写技术的基础上设计并制作了两种啁啾光纤布拉格光栅(CFBG)展宽器。基于相位掩模版刻写技术的原理和CFBG的色散补偿理论,提出了两种展宽器的制作方法,并优化了刻写光路,获得了高反射率、大反射带宽的CFBG。通过拉力传感器控制CFBG的反射谐振波长,通过改进刻写方式制作了大色散量的CFBG级联展宽器和大反射带宽的CFBG串联展宽器。搭建了两种展宽器的测试光源,通过直接测量的方式得到CFBG级联展宽器所提供的展宽量约为345 ps,这与理论结果相符;通过正、反接的方式间接推算了CFBG串联展宽器所提供的展宽量约为278.7 ps,这小于理论结果。  相似文献   
3.
Yun-Chen Zhu 《中国物理 B》2022,31(6):64201-064201
The influence of optical nonlinearity on combining efficiency in ultrashort pulse fiber laser coherent combining system is investigated theoretically and experimentally. In the theoretical work, a new theoretical algorithm is presented for the coherent combining efficiency, which can be used to quantify the spectral coherence decay induced by optical nonlinearity imbalance between the sub-beams. The spectral information of the sub-beam is obtained by numerically solving the nonlinear Schrödinger equation (NLSE) in this algorithm to ensure an accurate prediction. In the experimental work, the coherent combining of two all-fiber picosecond lasers is achieved, and the influence of imbalanced optical nonlinearity on the combining efficiency is studied, which agrees with the theoretical prediction. This paper reveals the physical mechanism for the influence of optical nonlinearity on the combining efficiency, which is valuable for the coherent combining of ultrashort pulse fiber laser beams.  相似文献   
4.
Tm~(3+)掺杂碲酸盐微结构光纤激光器   总被引:3,自引:2,他引:1       下载免费PDF全文
以1 560 nm的掺Er3+石英光纤激光器作为泵浦源,在Tm3+掺杂的碲酸盐微结构光纤中实现了2μm的激光输出。采用棒管法拉制出了纤芯由6个空气孔包围的微结构光纤,选取了2.8 cm的微结构光纤,研究了其激光性能,获得了9 mW波长为1 872 nm的激光输出,激光的斜效率为6.53%,激光阈值为200 mW。研究结果表明,所制备的Tm3+掺杂碲酸盐微结构光纤可用于制作紧凑型2μm光纤激光器。  相似文献   
5.
用棒管法拉制了Tm3+/Ho3+掺杂的碲酸盐微结构光纤,并获得了2 μm的激光输出。以1 560 nm的Er3+掺杂石英光纤激光器作为泵浦源,在22 cm长的微结构光纤中,得到了最大功率为8.34 mW、波长为2 065 nm的连续激光输出,泵浦光功率为507 mW,斜率效率为2.97%。研究结果表明,Tm3+/Ho3+共掺碲酸盐微结构光纤是一种用于研制2 μm激光器的理想材料。  相似文献   
6.
We report an all-fiberized chirped pulse amplification system without any bulk devices. The stretcher and compressor are chirped fiber Bragg gratings inscribed in a 6/125 μm single-mode fiber and a 30/250 μm largemode-area fiber. The fabrication system of chirped fiber Bragg gratings was designed and built by ourselves. The width of the linear exposure spot was controlled according to the different fiber sizes to improve the fabrication quality, and the parameters of chirped fiber Bragg gratings...  相似文献   
7.
可调谐中红外飞秒光纤激光器具有非常普遍的应用,从而引起了人们的广泛关注。目前,非线性光纤中的拉曼孤子自频移效应是实现大范围可调谐飞秒脉冲激光的理想方法之一。然而,非线性光纤中其他高阶非线性效应的产生通常会限制拉曼孤子脉冲的能量提升。本文提出了利用有源掺杂光纤作为非线性介质和增益介质实现可调谐大能量中红外飞秒激光脉冲的方法。在理论上研究了有源掺杂非线性光纤中高阶孤子劈裂和孤子自频移效应的产生,以及线性增益对波长移动拉曼孤子能量、脉宽、光谱的影响。结果表明,通过为波长红移的低能量拉曼孤子提供线性增益,孤子脉冲的能量得到了显著提升且保持了其单脉冲特性,脉冲宽度为45 fs,且孤子脉冲的波长可通过所提供的增益进行大范围调谐。因此,利用有源掺杂光纤作为非线性介质是实现大能量可调谐中红外飞秒脉冲激光的一种有效方法。  相似文献   
8.
Shun Li 《中国物理 B》2022,31(3):34207-034207
We report on a compact, stable, all-fiberized narrow-linewidth (0.045 nm) pulsed laser source emitting laser beam with a wavelength of 266 nm, and tunable pulse width and repetition rate. The system is based on all-fiberized nanosecond amplifier architecture, which consists of Yb-doped fiber preamplifiers and a super-large-mode-area Yb-doped fiber power amplifier. The fiber amplifier with a core of 50 μ is used to raise the threshold of the stimulated Brillouin scattering (SBS) effect and to obtain high output power and single pulse energy. Using lithium triborate (LBO) crystal and beta-barium borate (BBO) crystal for realizing the second-harmonic generation (SHG) and fourth-harmonic generation (FHG), we achieve 17 μJ (1.73 W) and 0.66 μJ (66 mW), respectively, at wavelengths of 532 nm and 266 nm and a repetition rate of 100 kHz with pulse width of 4 ns. This source has great potential applications in fluorescence research and solar-blind ultraviolet optical communication.  相似文献   
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