首页> 外文会议>2017 Conference on Lasers and Electro-Optics Europe amp; European Quantum Electronics Conference >Compact 1.5-GHz intra-burst repetition rate Yb-doped all-PM-fiber laser system for ablation-cooled material removal
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Compact 1.5-GHz intra-burst repetition rate Yb-doped all-PM-fiber laser system for ablation-cooled material removal

机译:紧凑型1.5 GHz突发内重复频率掺Yb的全PM光纤激光系统,用于消融冷却的材料去除

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Summary form only given. Femtosecond (fs) laser pulse sources have become increasingly popular in the last decade as a result of their practical features, such as insensitivity to environmental variations, versatile designs, high power outputs. However, much of the progress is with non-integrated specialty fibers, which involve some compromise on these practical features. Monolithic fiber chirped pulse amplification (CPA) systems are very attractive for industrial and scientific applications due to the features such as compactness, reliability and robustness. Although fs fiber laser systems are powerful technologies for material and tissue processing, limited ablation rates and high energy are drawbacks. Recently, we identified a new regime of laser-material interaction, ablation cooled material removal [1], where the repetition rate has to be high enough so that the targeted spot size cannot cool down substantially by heat conduction which scales down ablation threshold by several orders of magnitude and reduces thermal effects to the bulk of the target. Here, we demonstrate a compact all-PM-fiber laser amplifier system with an intra-burst repetition rate of 1.5 GHz able to produce bursts ranging from 20-ns to 65-ns duration with 20 μJ to 80 μJ total energy, respectively, and pulses with up to 1 μJ individual energy at burst repetition rates ranging from 25 kHz to 200 kHz (Fig. 1(a)). The seed signal is generated by a home-built all-normal dispersion oscillator with a spectrum centered at 1035 nm and 20-nm (FWHM), 100 mW output and 385 MHz repetition rate (Fig. 1(b)). After the oscillator, rest of the system is built of polarization maintaining (PM) components and a single-mode pre-amplifier controls both dispersion and nonlinearity in the amplifier system. The pulses are stretched with a 110 m-long fiber after this pre-amplifier and raised to a repetition rate of 1.5 GHz by a multiplier. The signal is amplified again by a second single-mode pre-amplifier before converted into burst-mode via an acousto-optic modulator (AOM). Finally, a forward-pumped double-clad power amplifier, built of PM 10/125 Yb 1200 DC (nLight) fiber and pumped by a 18-W wavelength stabilized diode, boosts the optical power. To compress the pulses, a pair of 1200 line/mm transmission gratings is preferred to denser gratings to limit third order dispersion (TOD). Further, fiber lengths are shortened as much as possible to minimize nonlinear effects including Raman scattering and thus the power conversion efficiency is relatively low, around 20% for the power amplifier. The autocorrelation measurement for the compressed pulses indicates a width of ~250 fs (Fig. 1(d)). The amplified output spectrum of FWHM of 14 nm is shown in (Fig. 1(c)).
机译:仅提供摘要表格。飞秒(fs)激光脉冲源由于其实用的功能(例如对环境变化不敏感,通用设计,高功率输出)在过去十年中变得越来越流行。但是,非集成特种纤维在许多方面取得了进步,这涉及到这些实用功能的某些折衷。单片光纤chi脉冲放大(CPA)系统具有紧凑性,可靠性和鲁棒性等特点,在工业和科学应用中非常有吸引力。尽管fs光纤激光系统是用于材料和组织加工的强大技术,但有限的烧蚀速率和高能量是缺点。最近,我们确定了一种新的激光与材料相互作用的方式,即消融冷却的材料去除[1],其中重复率必须足够高,以使目标光斑尺寸无法通过热传导基本冷却,从而将消融阈值降低了几倍。数量级,并将热影响减小到目标的大部分。在这里,我们演示了紧凑的全PM光纤激光放大器系统,其突发内重复频率为1.5 GHz,能够产生20 ns至65 ns持续时间的突发,总能量分别为20μJ至80μJ。脉冲具有高达1μJ的单个能量,脉冲重复频率范围为25 kHz至200 kHz(图1(a))。种子信号由一个自制的全正常色散振荡器产生,其频谱中心为1035 nm和20 nm(FWHM),输出为100 mW,重复频率为385 MHz(图1(b))。在振荡器之后,系统的其余部分由偏振保持(PM)组件构成,并且单模前置放大器控制放大器系统中的色散和非线性。在此前置放大器之后,将脉冲用110 m长的光纤拉伸,并通过乘法器提高到1.5 GHz的重复频率。在通过声光调制器(AOM)转换为突发模式之前,信号由第二个单模前置放大器再次放大。最后,由PM 10/125 Yb 1200 DC(nLight)光纤构成并由18W波长稳定二极管泵浦的前泵双包功率放大器可提高光功率。为了压缩脉冲,最好使用一对1200行/毫米的透射光栅,而不是较密集的光栅,以限制三阶色散(TOD)。此外,尽可能地缩短光纤长度以最小化包括拉曼散射的非线性效应,因此功率转换效率相对较低,对于功率放大器而言约为20%。压缩脉冲的自相关测量表明约250 fs的宽度(图1(d))。 FWHM的放大输出光谱为14 nm,如图1(c)所示。

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