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1.
双包层光纤光栅选频双包层光纤激光器   总被引:7,自引:2,他引:5  
双包层光纤激光器中多采用法布里珀罗(F-P)线形腔结构,谐振腔为一只二向色镜和光纤端面菲涅耳反射镜(反射率约为4%)构成,这属于一种有缺陷的腔结构,其稳定性不好,产生激光的波长很难得到有效控制,后腔镜不能精确选择激光器的输出波长,激光器的输出谱线较宽。在某些对激光波长有明确要求的应用中,该结构会受到限制。采用布拉格光纤光栅作腔镜,利用其窄带滤波特性,可以得到窄线宽的激光输出,目前报道的作为腔镜的布拉格光纤光栅为在单包层光敏光纤上制作而成,然后分别将不同反射率的光纤光栅与双包层增益光纤熔接,这给腔镜与双包层光纤之间带来很大的耦合损耗,影响了激光器的功率输出。该文报道了用相位掩模法在双包层光纤芯上写入了布拉格光纤光栅,并把此光纤光栅做为后腔镜.对长度为10m、20m的D形掺Yb^3 双包层光纤激光器进行实验研究,在1058nm附近得到稳定的窄线宽激光输出,3dB带宽为0.329nm。激光器最大输出功率为570mW。最后对实验结果进行了理论分析。  相似文献   

2.
高功率光子晶体光纤激光器实验研究   总被引:3,自引:1,他引:2       下载免费PDF全文
 利用F-P谐振腔实验研究了高功率掺Yb3+光子晶体光纤激光器。使用915 nm和976 nm两种波长的泵浦源进行双端泵浦,在23 m长的双包层光子晶体光纤中获得了552 W的连续单模激光输出。该激光器的斜率效率约为76%,光-光转换效率为56%,光谱中心波长为1 078 nm,光束质量平方因子为1.2。  相似文献   

3.
利用光纤光栅的高功率掺镱光纤激光器   总被引:5,自引:0,他引:5  
潘玉寨  张军  胡贵军  张亮  刘云  王立军 《光学学报》2004,24(9):237-1239
报道了利用一对光纤光栅作为双包层Yb^3 掺杂光纤激光器的谐振腔,激光二极管光纤模块(LD)进行了抽运,并采用锥形光纤实现了全光纤化结构,获得了高功率双包层光纤激光器。光纤光栅通常是用融接技术实现与双包层光纤的一体化连接的,采用的双包层光纤为内包层为梅花瓣形结构的掺Yb^3 离子的石英光纤,采用的抽运源为中心波长为970nm的半导体激光光纤输出模块,在抽运源电流达到2.4A时,获得了10.8W的光纤激光器单横模输出,输出波长1100.5nm,峰值半峰全宽(FWHM)为0.54nm,激光器斜效率为59%。  相似文献   

4.
 分析了Yb3+的能级结构、光谱特性以及激光发射特性。实验研究了中心波长为1 100 nm、输出功率为61.6W、斜率效率为55%的高功率掺Yb3+双包层光纤激光器。采用了两个中心波长在915 nm的高功率激光二极管分别从光纤的两端将泵浦光耦合进入光纤,采用45°对波长在(1 100±10) nm的激光高反,对波长在(915±10) nm的泵浦光高透的双色镜将激光输出,实验发现了掺Yb3+双包层光纤的合作发光效应。理论分析表明,掺Yb3+双包层光纤中合作发光效应是由Yb3+对在激光产生过程中的吸收与发射引起的。  相似文献   

5.
采用布拉格光纤光栅作为谐振腔,实现了980 nm半导体激光器端面泵浦下的双包层掺镱光纤激光器的连续和调Q运转.连续激光实验结果表明,在泵浦功率固定时,增益光纤存在激光输出功率最大情况下的最佳长度,当泵浦功率增大时,最佳增益光纤长度也随之增加.采用石墨烯分散液作为可饱和吸收体,插入增益光纤与布拉格光纤光栅之间,实现了光纤激光器的稳定被动调Q运转.当泵浦功率为2.87W时,得到了最小脉冲宽度33 ns、重复率38.5 kHz的脉冲序列;随着泵浦功率进一步增大,出现不稳定的调Q锁模现象.  相似文献   

6.
全光纤化掺铥光纤激光器作为光学参量振荡器的泵浦源,可以实现3~5μm激光输出,在激光雷达和光电对抗领域有着极为重要的应用前景.本文运用全国产化的泵浦光耦合器和双包层掺铥光纤实现了全光纤化掺铥光纤激光器.该光纤激光器采用自制的光纤布喇格光栅作为反射腔镜,增益光纤采用水冷的方式.光纤布喇格光栅通过45fs、800nm的飞秒脉冲光和相位掩模板直接在双包层掺铥光纤上刻蚀得到,泵浦光通过泵浦光耦合器的一端耦合进入增益光纤,产生的激光由泵浦光耦合器的另一端输出.输出激光的最高功率达到22.2W,激光波长为1.96μm,斜率效率约为37%,激光线宽为72.4pm.  相似文献   

7.
啁啾倾斜布拉格光纤光栅(CTFBG)在高功率光纤激光器的受激拉曼散射(SRS)抑制中有重要的应用。利用飞秒激光在纤芯/包层直径为20/400μm的大模场面积双包层光纤(LMA-DCF)中刻写出不同角度的CTFBG,其最大滤除深度约为15 dB,最大滤除宽度约为8.9 nm。飞秒激光刻写CTFBG可以显著缩短制备周期,对推动CTFBG的研制与发展具有重要意义。  相似文献   

8.
波长无啁啾调谐窄线宽掺Yb3+双包层光纤激光器   总被引:1,自引:0,他引:1  
用相位掩模法, 在圆形掺Yb3+双包层光纤上制作了Bragg光纤光栅,并用它作为双包层光纤激光器的输出腔镜, 在光栅反射中心波长1055.2 nm位置得到了窄线宽的激光输出, FWHM为0.271 nm, 信噪比约为40 dB.这种结构的双包层光纤激光器, 在双包层增益光纤和后腔镜间没有连接损耗, 减小了双包层光纤激光器体积. 用自行制作的等强度梁对作为输出腔镜的光纤光栅做双向应力调谐, 实现了激光波长无啁啾调谐输出, 调谐范围1051.1~1060.04nm,调谐量达8.9nm, 调谐过程中激光3 dB线宽基本无变化.  相似文献   

9.
基于光纤光栅谐振腔的掺镱全光纤激光器设计(英文)   总被引:1,自引:0,他引:1  
采用数值分析方法分析了光纤长度、后腔镜反射率等因素对激光器输出阈值泵浦功率、输出功率的影响,为全光纤激光器的优化设计提供了理论基础.在设计过程中采用光纤光栅作为光纤激光器的反馈与选频腔镜,通过锥度光纤实现了泵浦模块与掺镱双包层光纤之间的低损耗连接以及高效率的泵浦激光功率传输,成功研制了具备稳定窄化线宽激光输出的掺镱全光纤激光器.实验得到了波长峰值在1 082 .50 nm,谱线宽度0 .113 nm,最大输出功率8 .5 W,泵浦阈值功率0 .8 W,斜率效率为70 .8 %的稳定激光输出.  相似文献   

10.
掺Yb3+双包层光纤激光器的数值分析   总被引:17,自引:7,他引:10  
本文对976nm激光泵浦掺Yb3+双包层光纤激光器进行了数值模拟,分析了泵浦光及激光在光纤中的分布、输出功率与泵浦功率的关系、光纤长度及腔镜反射率对输出激光功率的影响,所得结论与实验现象基本一致.  相似文献   

11.
Y. Zhang  Ch. Song  W. Wang 《Laser Physics》2009,19(8):1854-1857
The all-fiber Tm-doped double-clad laser was reported, incorporating a phase mask scanning technology writing FBG directly into the Tm-doped multi-mode fiber core as cavity mirror, using 800 nm femtosecond laser sources. A fiber grating of 12 mm length was realized with a period of 1.35 μm. Pumped by the 793 nm pigtail fiber output LD, the continuous wave (CW) power could scale to 25.4 W at 1.96 μm with the slope efficiency of 38% respected to the LD output power. The output laser spectrum exhibited multi-peak, due to the multi-mode FBG reflective characteristic.  相似文献   

12.
光纤光栅选频掺Yb3+双包层光纤激光器   总被引:2,自引:1,他引:1       下载免费PDF全文
利用相位掩模法,在D形内包层掺Yb3+双包层光纤一端直接写制出Bragg光栅,用作双包层光纤激光器的输出腔镜.试验得到了线宽为0.196nm,波长为1058.2nm,最高输出功率为570mW的稳定激光输出,解决了激光器中模式竞争造成的输出不稳定现象.从速率方程出发,对激光器的输出功率与抽运功率、光栅反射率的关系以及最佳光纤长度进行了理论分析,结果与实验符合很好. 关键词: 双包层光纤光栅 掺Yb3+双包层光纤激光器 相位掩模 速率方程  相似文献   

13.
利用相位掩模法 ,在D形内包层掺Yb3 双包层光纤一端直接写制出Bragg光栅 ,用作双包层光纤激光器的输出腔镜 .试验得到了线宽为 0 196nm ,波长为 10 5 8 2nm ,最高输出功率为 5 70mW的稳定激光输出 ,解决了激光器中模式竞争造成的输出不稳定现象 .从速率方程出发 ,对激光器的输出功率与抽运功率、光栅反射率的关系以及最佳光纤长度进行了理论分析 ,结果与实验符合很好  相似文献   

14.
We report for the first time to inscribe the Fiber Bragg Grating (FBG) in Tm3+-doped multimode double-clad silica fiber by 800 nm femtosecond laser with a phase mask. The 1.35 μm period Bragg grating is written into the fiber core, which is responded to the laser center wavelength located at nearly 1960 nm. Continuous wave total output power of 11.5 W is obtained under the launched pump power of 29.8 W, corresponding to a slope efficiency of 45.0% and a conversion efficiency of 38.6%.  相似文献   

15.
An all-fiber LD-clad-pumped Tm-doped fiber laser was reported, and the CW maximal output power reached 24 W at nearly 1.94 μm. The double-clad Tm-doped fiber had a demission of 25/250 μm with the core NA 0.1 and inner-clad NA 0.46. A matched passive multi-mode FBG acted as the front cavity. Cooling by the water, the 56% high slope efficiency was achieved and threshold was 6.4 W, respected to the launched pump power. At the low power pump, the fiber laser spectrum had only one peak at 1.936 μm. Increasing the launched pump power, the output laser wavelength grew to 3–4 peaks. Because the multi-mode FBG reflectivity was not very high, both ends of the fiber laser had laser output power, and the ratio was nearly 10:1.  相似文献   

16.
Simultaneous double-color high-power continuous wave (CW) Raman fiber laser at 1239 nm and 1484 nm is demonstrated which uses CW 8.4 W Yb-doped double-clad fiber laser at 1064 nm as a pump, 1 km phosphosilicate fiber, and cascaded cavities consisting of two pairs of fiber Bragg grating (FBG) mirrors. Maximum output powers are 0.65 W at 1239 nm and 0.97 W at 1484 nm with a 50%/50% output mirror reflectivity pair, and 0.37 W at 1239 nm and 1.06 W at 1484 nm with a 75.5%/50% pair. The output characteristics of this laser for different FBG mirror reflectivities are reported.  相似文献   

17.
A novel all fiber cavity Yb3+-doped double-clad fiber laser (DCFL) based on two double-clad fiber (DCF)Bragg grating is presented. The fiber Bragg gratings (FBGs) as the input and output mirrors have been formed in Yb3+-doped DCF with the phase-mask method, and their reflectivities are 99% and 22%,respectively. When the input pump power is 417 mW, the maximum output power is 144 mW with linewidth <0.1 nm at the wavelength of 1.057μm, over 40-dB signal-to-noise ratio (SNR), and 50.8% slope efficiency.  相似文献   

18.
A compact Erbium-doped fiber laser (EDFL) operating in L-band region is demonstrated using a fabricated Erbium-doped Zirconia fiber (EDZF) for the first time. The fiber is fabricated by combining Zr and Al to achieve the maximum Erbium ion concentration of 4320 wt ppm. By using a fiber Bragg grating (FBG) in a ring configuration, the laser operates at 1579.6 nm with a slope efficiency of 13.6% and the threshold pump power of 25.1 mW. The lasing wavelength is obtained at Bragg wavelength with an output power of 13 dBm and a 3 dB spectral width of 0.02 nm using a piece of 2 m long EDZF in conjunction with 120 mW of 1480 nm pump power.  相似文献   

19.
We examine the characteristics of a P2O5-doped Raman fiber laser pumped by a double-clad ytterbium-doped fiber laser in an intra-cavity configuration. The double-clad fiber laser consists of two high reflection fiber Bragg gratings at 1092 nm, with an active length of 17 m, where the output grating is located at the end of the 400m P2O5-doped fiber. The Raman cavity is formed by a 1278-nm-high reflection fiber Bragg grating spliced to the double-clad fiber, and a 50% output coupler. The maximum conversion efficiency at 1278 nm with respect to the input pump power at 915 nm was 26.9%.  相似文献   

20.
Y. Zhang  T. Jing 《Laser Physics》2009,19(12):2197-2199
The diode laser (LD) clad-pumped 1947.6 nm continuous wave (CW) Tm3+-doped fiber amplifier is reported using the master oscillation power amplifier (MOPA) method. The injected seed laser is provided by an all-fiber LD-clad-pumped Tm3+-doped single-mode fiber laser, which has a nearly 2.4 W maximal output power and 0.1 nm ultra-narrow linewidth based on the intracore reflection FBG. Using the 25/400 μm double-clad LMA Tm3+-doped fiber as the gain fiber, the output maximal output power is 30.6 W from the fiber amplifier, with a slope efficiency of 39.1% respected to the LD total output power. A high power multi-mode fiber combiner is used to couple high power LD light into the gain fiber. The output wavelength is also located at 1947.6 nm, with the slightly expanded laser linewidth of 0.2 nm.  相似文献   

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