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Self-phase modulation enabled, wavelength-tunable ultrafast fiber laser sources: an energy scalable approach

机译:具有自相位调制功能的波长可调超快光纤激光源:一种能量可扩展方法

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摘要

We propose and demonstrate a new approach to implement a wavelength-tunable ultrafast fiber laser source suitable for multiphoton microscopy. We employ fiber-optic nonlinearities to broaden a narrowband optical spectrum generated by an Yb-fiber laser system and then use optical bandpass filters to select the leftmost or rightmost spectral lobes from the broadened spectrum. Detailed numerical modeling shows that self-phase modulationdominates the spectral broadening, self-steepening tends to blue shift the broadened spectrum, and stimulated Raman scattering is minimal. We also find that optical wave breaking caused by fiber dispersion slows down the shift of the leftmost/rightmost spectral lobes and thereforelimits the wavelength tuning range of the filtered spectra. We show both numerically and experimentally that shortening the fiber used for spectral broadening while increasing the input pulse energy can overcome this dispersion-induced limitation; as a result, the filtered spectral lobes have higher power, constituting a powerful and practical approach for energy scaling the resulting femtosecond sources. We use two commercially available photonic crystal fibers to verify the simulation results. More specific, use of 20-mm fiber NL-1050-ZERO-2 enables us to implement an Yb-fiber laser based ultrafast source, delivering femtosecond (70-120 fs) pulses tunable from 825 nm to 1210 nm with >1 nJ pulse energy.
机译:我们提出并演示了一种新方法,以实现适用于多光子显微镜的波长可调超快光纤激光源。我们采用光纤非线性来扩宽由Yb光纤激光系统产生的窄带光谱,然后使用光学带通滤波器从扩宽的光谱中选择最左边或最右边的光谱波瓣。详细的数值模型表明,自相位调制在光谱展宽中占主导地位,自陡化趋于使展宽的光谱发生蓝移,并且受激拉曼散射最小。我们还发现,由光纤色散引起的光波破裂会减慢最左侧/最右侧光谱波瓣的偏移,从而限制了滤波光谱的波长调谐范围。我们通过数值和实验表明,在增加输入脉冲能量的同时缩短用于光谱加宽的光纤可以克服色散引起的局限性。结果,滤波后的频谱瓣具有更高的功率,从而构成了一种强大而实用的方法,用于按比例缩放所产生的飞秒源。我们使用两种市售的光子晶体光纤来验证仿真结果。更具体地说,使用20毫米光纤NL-1050-ZERO-2使我们能够实现基于Yb光纤激光器的超快光源,以大于1 nJ的脉冲提供从825 nm可调至1210 nm的飞秒(70-120 fs)脉冲能源。

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