Chen Xiaoyu, Zhou Xue, Yan Xin, Zhang Xuenan, Suzuki Takenobu, Ohishi Yasutake, Cheng Tonglei
Opt Lett. 2024 Jun 1;49(11):3190-3193. doi: 10.1364/OL.525099.
In this study, multi-wavelength second-harmonic generation (SHG) based on self-phase modulation (SPM) broadband supercontinuum (SC) was observed by employing a double-clad high nonlinear optical fiber (HNLF) in conjunction with a femtosecond laser. At a wavelength of 1050 nm and an average pump power of 320 mW, multiple phase-matching conditions were achieved, and SH signals of central wavelengths ∼530.7 nm, ∼525.1 nm, ∼503.5 nm, and ∼478.7 nm were observed, with SHG efficiency reaching ∼1.34 × 10. The SHG in this experiment can be attributed to the utilization of a doped optical fiber, where dopants create defect states, facilitating optical-chemical transformation and enhancing second-order polarization susceptibility. Additionally, theoretical simulations were conducted, aligning closely with the experimental findings. To the best of our knowledge, this work marks the first demonstration of multi-wavelength SHG in optical fibers. It offers a distinctive avenue for customizing multi-wavelength ultrafast light sources, exhibiting great application potential in the fields of medical diagnostics and optical sensing.
在本研究中,通过将双包层高非线性光纤(HNLF)与飞秒激光结合使用,观察到了基于自相位调制(SPM)宽带超连续谱(SC)的多波长二次谐波产生(SHG)。在波长为1050 nm、平均泵浦功率为320 mW的条件下,实现了多个相位匹配条件,并观察到中心波长约为530.7 nm、525.1 nm、503.5 nm和478.7 nm的SH信号,SHG效率达到约1.34×10。本实验中的SHG可归因于掺杂光纤的利用,其中掺杂剂产生缺陷态,促进光化学转变并增强二阶极化率。此外,进行了理论模拟,与实验结果密切吻合。据我们所知,这项工作标志着光纤中多波长SHG的首次演示。它为定制多波长超快光源提供了一条独特途径,在医学诊断和光学传感领域具有巨大的应用潜力。