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Ultrafast Modulation of the Molten Metal Surface Tension under Femtosecond Laser Irradiation

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【作者】 李辰豪梁洪涛杨洋于志勇张鑫马祥明鲁文亮孙真荣程亚

【Author】 Chenhao Li;Hongtao Liang;Yang Yang;Zhiyong Yu;Xin Zhang;Xiangming Ma;Wenliang Lu;Zhenrong Sun;Ya Cheng;State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science,East China Normal University;

【通讯作者】 杨洋;程亚;

【机构】 State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science,East China Normal University

【摘要】 We predict ultrafast modulation of the pure molten metal surface stress fields under the irradiation of the single femtosecond laser pulse through the two-temperature model molecular-dynamics simulations. High-resolution and precision calculations are used to resolve the ultrafast laser-induced anisotropic relaxations of the pressure components on the time-scale comparable to the intrinsic liquid density relaxation time. The magnitudes of the dynamic surface tensions are found being modulated sharply within picoseconds after the irradiation, due to the development of the nanometer scale non-hydrostatic regime behind the exterior atomic layer of the liquid surfaces.The reported novel regulation mechanism of the liquid surface stress field and the dynamic surface tension hints at levitating the manipulation of liquid surfaces, such as ultrafast steering the surface directional transport and patterning.

【Abstract】 We predict ultrafast modulation of the pure molten metal surface stress fields under the irradiation of the single femtosecond laser pulse through the two-temperature model molecular-dynamics simulations. High-resolution and precision calculations are used to resolve the ultrafast laser-induced anisotropic relaxations of the pressure components on the time-scale comparable to the intrinsic liquid density relaxation time. The magnitudes of the dynamic surface tensions are found being modulated sharply within picoseconds after the irradiation, due to the development of the nanometer scale non-hydrostatic regime behind the exterior atomic layer of the liquid surfaces.The reported novel regulation mechanism of the liquid surface stress field and the dynamic surface tension hints at levitating the manipulation of liquid surfaces, such as ultrafast steering the surface directional transport and patterning.

【基金】 the National Key R&D Program of China (Grant No. 2019YFA0705000);the National Natural Science Foundation of China (Grant Nos. 11874147, 11933005, and 12134001);the Science and Technology Commission of Shanghai Municipality (Grant No. 21DZ1101500);the Shanghai Municipal Science and Technology Major Project (Grant No. 2019SHZDZX01);the Natural Science Foundation of Chongqing, China (Grant No. cstc2021jcyj-msxm X1144);the State Key Laboratory of Solidification Processing in NWPU (Grant No. SKLSP202105)
  • 【文献出处】 Chinese Physics Letters ,中国物理快报(英文版) , 编辑部邮箱 ,2022年07期
  • 【分类号】TN249;O35
  • 【下载频次】10
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