Sun Mengzhen, Cui Jingyi, Yu Bosong, Feng Zhichao, Li Yijun, Chen Yanchuan, Wang Yisen, Feng Lishuang, Liu Yizhou, Wang Aimin
Opt Express. 2023 Jul 17;31(15):24298-24306. doi: 10.1364/OE.493694.
The 1600-1700-nm ultrafast fiber lasers attract great interests in the deep multiphoton microscopy, due to the reduced levels of the tissue scattering and absorption. Here, we report on the 86.7-MHz, 717-mW, 91.2-fs, all-fiber laser located in the spectral range from 1600 nm to 1700nm. The soliton self-frequency shift (SSFS) was introduced into the Er:Yb co-doped fiber amplifier (EYDFA) to generate the high-power, 1600-1700-nm Raman soliton. Detailed investigations of the nonlinear fiber amplification process were implemented in optimizing the generated Raman soliton pulses. The miniature multiphoton microscopy was further realized with this home-built laser source. The clearly imaging results can be achieved by collecting the generated harmonic signals from the mouse tail skin tissue with a penetration depth of ∼500 µm. The experimental results indicate the great potential in utilizing this 1600-1700-nm fiber laser in the deep multiphoton microscopy.
1600 - 1700纳米的超快光纤激光器因组织散射和吸收水平降低,在深层多光子显微镜领域引起了极大关注。在此,我们报道了一台位于1600纳米至1700纳米光谱范围内、频率为86.7兆赫兹、功率为717毫瓦、脉宽为91.2飞秒的全光纤激光器。将孤子自频移(SSFS)引入铒镱共掺杂光纤放大器(EYDFA)以产生高功率的1600 - 1700纳米拉曼孤子。在优化所产生的拉曼孤子脉冲过程中,对非线性光纤放大过程进行了详细研究。利用这个自制的激光源进一步实现了微型多光子显微镜。通过收集来自小鼠尾部皮肤组织、穿透深度约为500微米的产生的谐波信号,可以获得清晰的成像结果。实验结果表明,在深层多光子显微镜中利用这种1600 - 1700纳米光纤激光器具有巨大潜力。