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基于自相位调制实现光谱选择的兆瓦级峰值功率可调谐飞秒光源。

Megawatt peak power tunable femtosecond source based on self-phase modulation enabled spectral selection.

作者信息

Chung Hsiang-Yu, Liu Wei, Cao Qian, Song Liwei, Kärtner Franz X, Chang Guoqing

出版信息

Opt Express. 2018 Feb 5;26(3):3684-3695. doi: 10.1364/OE.26.003684.

Abstract

Wavelength widely tunable femtosecond sources can be implemented by optically filtering the leftmost/rightmost spectral lobes of a broadened spectrum due to self-phase modulation (SPM) dominated fiber-optic nonlinearities. We numerically and experimentally investigate the feasibility of implementing such a tunable source inside optical fibers with negative group-velocity dispersion (GVD). We show that the spectral broadening prior to soliton fission is dominated by SPM and generates well-isolated spectral lobes; filtering the leftmost/rightmost spectral lobes results in energetic femtosecond pulses with the wavelength tuning range more than 400 nm. Employing an ultrafast Er-fiber laser and a dispersion-shifted fiber with negative GVD, we implement an energetic tunable source that produces ~100-fs pulses tunable between 1.3 µm and 1.7 µm with up to ~16-nJ pulse energy. Further energy scaling is achieved by increasing the input pulse energy to ~1-μJ and reducing the fiber length to 1.3 cm. The resulting source can produce >100-nJ femtosecond pulses at 1.3 µm and 1.7 µm with MW level peak power, representing an order of magnitude improvement of our previous results. Such a powerful source covers the 2nd and the 3rd biological transmission window and can facilitate multiphoton deep-tissue imaging.

摘要

由于自相位调制(SPM)主导的光纤非线性效应使光谱展宽,通过对展宽光谱最左侧/最右侧的光谱瓣进行光学滤波,可以实现波长广泛可调的飞秒光源。我们通过数值模拟和实验研究了在具有负群速度色散(GVD)的光纤内实现这种可调光源的可行性。我们表明,孤子裂变之前的光谱展宽主要由SPM主导,并产生了良好隔离的光谱瓣;对最左侧/最右侧的光谱瓣进行滤波可产生能量较高的飞秒脉冲,其波长调谐范围超过400 nm。利用超快掺铒光纤激光器和具有负GVD的色散位移光纤,我们实现了一个能量可调光源,该光源能产生脉宽约100 fs、波长在1.3 µm至1.7 µm之间可调、脉冲能量高达约16 nJ的脉冲。通过将输入脉冲能量增加到约1 μJ并将光纤长度缩短至1.3 cm,实现了进一步的能量放大。由此产生的光源可以在1.3 µm和1.7 µm波长处产生能量大于100 nJ的飞秒脉冲,峰值功率达到兆瓦级,比我们之前的结果提高了一个数量级。这样一个强大的光源覆盖了第二和第三生物传输窗口,可促进多光子深层组织成像。

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