Zhang Yun, Xia Yu, Liang Canneng, Chen Anmin, Li Suyu, Jin Mingxing
Institute of Atomic and Molecular Physics, Jilin University, Changchun 130012, China.
Research Center for Intelligent Transportation, Zhejiang Laboratory, Hangzhou 311121, China.
Sensors (Basel). 2023 Nov 14;23(22):9163. doi: 10.3390/s23229163.
We experimentally studied the supercontinuum induced by femtosecond filamentation in different liquid media. Using a Mach-Zehnder interferometer, we determined the relative filamentation thresholds () of these media. Research has shown that the value of the filamentation threshold is greater than that of (critical power for self-focusing), which can mainly be attributed to the strong dispersion effect. Changing the focal length of the focusing lens affects filamentation dynamics, thereby affecting the measured results regarding the filamentation threshold. With shorter focal lengths, the linear focusing (i.e., geometrical focusing) regime dominates, and the measured values of for different liquid media are almost the same; as the focal length becomes larger, self-focusing starts to play a role, making the values of for different media different from each other. This study presents an efficient method for investigating the femtosecond filamentation phenomenon in liquid media, helpful to provide further insights into the physical mechanism of supercontinuum generation via femtosecond filamentation in liquid media.
我们通过实验研究了不同液体介质中飞秒丝状化诱导产生的超连续谱。利用马赫 - 曾德尔干涉仪,我们确定了这些介质的相对丝状化阈值()。研究表明,丝状化阈值的值大于(自聚焦临界功率)的值,这主要可归因于强色散效应。改变聚焦透镜的焦距会影响丝状化动力学,从而影响关于丝状化阈值的测量结果。焦距较短时,线性聚焦(即几何聚焦) regime 占主导,不同液体介质的测量值几乎相同;随着焦距变大,自聚焦开始起作用,使得不同介质的 值彼此不同。本研究提出了一种研究液体介质中飞秒丝状化现象的有效方法,有助于进一步深入了解液体介质中通过飞秒丝状化产生超连续谱的物理机制。