首页|基于声致光纤光栅输出1.1~1.5 μm波段高功率随机涡旋光束

基于声致光纤光栅输出1.1~1.5 μm波段高功率随机涡旋光束

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近年来,携带轨道角动量(OAM)的涡旋光束因具有重要研究价值和应用前景而备受关注。随着涡旋光束在传感、测量以及大容量光通信中的应用,输出带宽以及波长可调谐性成为关注的热点。突破稀土掺杂光纤发射波长限制和宽带模式转换的器件是实现特殊波段/宽带涡旋光输出的基础。为同时满足以上要求,本文采用基于分布式瑞利散射的随机拉曼光纤激光器结构,结合具备宽带模式转换能力的声致光纤光栅(AIFG),通过级联拉曼频移,实现了 1133。9、1197。6、1260。5、1331。8、1414。5、1513。7 nm波长处拓扑荷数l=±1的涡旋光束输出,并通过自干涉实验进行验证。在1513。7 nm波长处功率为23。6 W,效率为31。1%。该研究不仅在全光纤中实现了紧凑的波长可调谐高功率涡旋光输出,验证了 AIFG的超宽模式转换能力,也为其他波段涡旋光输出提供了参考方案,可进一步拓展涡旋光在多维光通信、光场与物质相互作用等领域的应用。
1.1-1.5 μm Waveband High Power Random Vortex Beams Based on Acoustically-Induced Fiber Grating
Objective In recent years,vortex beams carrying orbital angular momentum(OAM)have caught much attention due to their research significance and application prospects.With the applications of vortex beams in sensing,measurement,and high-capacity optical communication,the output bandwidth and wavelength tunability of vortex beams have become a research focus.Breaking through the emission wavelength limitation of rare-earth doped fiber,and the device of broadband mode conversion is the basis for realizing the output of special band/broadband vortex light.Currently,many devices can realize vortex beam output in a fiber laser.However,most devices are designed and manufactured according to the target wavelength.The acoustically-induced fiber grating(AIFG)achieves mode conversion by acousto-optic coupling in passive fibers.When the operating wavelength changes,it only needs to change the frequency of the loaded electric signal,without re-designing and replacing the parameters of the mode conversion device.Theoretically,it has an extremely wide operating bandwidth.Considering the above requirements,the structure of random Raman fiber laser(RRFL)based on distributed Rayleigh backscattering is adopted to realize broadband vortex beams by combining the AIFG.Methods By combining the AIFG and RRFL,when the output wavelength is converted by Raman frequency shift,there is no need to redesign and replace the mode conversion device.The transmission spectrum of the LP01 mode is tested in Fig.1(b),which indicates that there is a high efficiency of mode conversion from 1000 to 1700 nm.The RRFL is built as shown in Fig.2.An amplified spontaneous emission(ASE)source including two amplification stages is utilized as the pump source which is then coupled into the half-open cavity of RRFL by wavelength division multiplexing(WDM).The half-open cavity is formed by a high-reflective(HR)optical fiber mirror which is attached to the WDM,a piece of gain fiber,and a homemade fiber endcap.The reflectance of the HR mirror is more than 99.5%at 1-2 μm,and anti-reflection coating is conducted on the endcap to evade unwanted end feedback.The gain fiber is the commercial CS980 fiber with a length of 500 m.Once the suitable electrical signal is loaded on the AIFG,the output mode is converted to LP11 mode,and the ring-shaped radially polarized light and vortex beam with topological charge l=±1 output can be realized by precise polarization control.Results and Discussions When the pump power reaches the Raman threshold,the pump energy begins to transfer to the Raman Stokes.By integrating the output spectrum,the variation curves of the Raman optical power of each order are calculated,as shown in Fig.3(a).When the pump power reaches 76 W,the output wavelength reaches 1513.7 nm by the six-stage Raman shift,with a power of 23.6 W and a total efficiency of 31.1%.With the cascaded wavelength conversion,the purity and efficiency of high-order Raman light decrease,which is shown in Figs.3(c)and 3(d).With the increasing output wavelength,the loss of gain fiber rises with the incomplete conversion of each stage,which results in a gradual efficiency decrease.Once there is a π/2 phase difference between the eigenmodes by controlling the polarization controller(PC),the vortex beam can be realized via the superposition of the two modes,and the"Y-shaped"interference fringe can be detected by the self-interference experiment(Fig.5),which proves that the vortex beam with topological charge l=±1 is generated.Conclusions We propose an all-fiber high-power RRFL with vortex beam output in the 1.1-1.5 μm band.Based on the cascaded Raman shift and broadband AIFG,the output of vortex beams with topological charges l=±1 at 1133.9,1197.6,1260.5,1331.8,1414.5,and 1513.7 nm wavelengths is realized,and the topological charge is verified by self-interference experiments.After the six-stage conversion,the power at 1513.7 nm wavelength is 23.6 W,with an efficiency of 31.1%.The ultra-wide wavelength tuning capability of the AIFG is expected to make it a key device to fill the spectral gap of vortex beams and can provide a reliable light source for the application of special wavelength vortex beams.By replacing the pump source,gain fiber,and related devices,the wavelength coverage of the vortex beam can be further expanded in other wavebands,and the application of vortex light in multi-dimensional optical communication and interaction between light field and matter can be further expanded.

random Raman fiber laservortex beamacoustically-induced fiber gratingorbital angular momentum

李阳、姚天甫、范晨晨、郝修路、马小雅、许将明、张青松、曾祥龙、周朴

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国防科技大学前沿交叉学科学院,湖南 长沙 410073

国防科技大学南湖之光实验室,湖南 长沙 410073

高能激光技术湖南省重点实验室,湖南长沙 410073

上海大学特种光纤与光接入网重点实验室,特种光纤与先进通信国际合作联合实验室,上海 200444

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随机拉曼光纤激光器 涡旋光束 声致光纤光栅 轨道角动量

国家自然科学基金国家自然科学基金

1217444562061136013

2024

光学学报
中国光学学会 中国科学院上海光学精密机械研究所

光学学报

CSTPCD北大核心
影响因子:1.931
ISSN:0253-2239
年,卷(期):2024.44(10)
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