Dynamic surface stress field of the pure liquid-vapor interface subjected to the cyclic loads
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Yu, Zhiyong
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East China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R ChinaEast China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
Yu, Zhiyong
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Lv, Songtai
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East China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R ChinaEast China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
Lv, Songtai
[1
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Zhang, Xin
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East China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R ChinaEast China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
Zhang, Xin
[1
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Liang, Hongtao
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Zhangjiang Lab, Res & Dev Dept, Shanghai 201204, Peoples R ChinaEast China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
Liang, Hongtao
[2
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Xie, Wei
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Shanghai Univ, Mat Genome Inst, Shanghai 200444, Peoples R ChinaEast China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
Xie, Wei
[3
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Yang, Yang
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East China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R ChinaEast China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
Yang, Yang
[1
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[1] East China Normal Univ, Sch Phys & Elect Sci, State Key Lab Precis Spect, Shanghai 200241, Peoples R China
[2] Zhangjiang Lab, Res & Dev Dept, Shanghai 201204, Peoples R China
[3] Shanghai Univ, Mat Genome Inst, Shanghai 200444, Peoples R China
We demonstrate a methodology for computationally investigating the mechanical response of a pure molten lead surface system to the lateral mechanical cyclic loads and try to answer the following question: how does the dynamically driven liquid surface system follow the classical physics of the elastic-driven oscillation? The steady-state oscillation of the dynamic surface tension (or excess stress) under cyclic load, including the excitation of high-frequency vibration mode at different driving frequencies and amplitudes, was compared with the classical theory of a single-body driven damped oscillator. Under the highest studied frequency (50 GHz) and amplitude (5%) of the load, the increase of in (mean value) dynamic surface tension could reach similar to 5%. The peak and trough values of the instantaneous dynamic surface tension could reach (up to) 40% increase and (up to) 20% decrease compared to the equilibrium surface tension, respectively. The extracted generalized natural frequencies seem to be intimately related to the intrinsic timescales of the atomic temporal-spatial correlation functions of the liquids both in the bulk region and in the outermost surface layers. These insights uncovered could be helpful for quantitative manipulation of the liquid surface using ultrafast shockwaves or laser pulses.
机构:
Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Richter, Clemens
Dupuy, Remi
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Sorbonne Univ, Lab Chim Phys Mat & Rayonnement, CNRS, F-75005 Paris 05, FranceFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Dupuy, Remi
Trinter, Florian
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Trinter, Florian
Buttersack, Tillmann
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Buttersack, Tillmann
Cablitz, Louisa
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Cablitz, Louisa
Gholami, Shirin
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Gholami, Shirin
Stemer, Dominik
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Stemer, Dominik
Nicolas, Christophe
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Synchrotron SOLEIL, BP 48, F-91192 Gif Sur Yvette, FranceFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Nicolas, Christophe
Seidel, Robert
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Helmholtz Zentrum Berlin Mat & Energie, Hahn Meitner Pl 1, D-14109 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Seidel, Robert
Winter, Bernd
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
Winter, Bernd
Bluhm, Hendrik
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Fritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, GermanyFritz Haber Inst Max Planck Soc, Faradayweg 4-6, D-14195 Berlin, Germany
机构:
Univ Vienna, Fac Phys, Boltzmanngasse 5, A-1090 Vienna, AustriaUniv Vienna, Fac Phys, Boltzmanngasse 5, A-1090 Vienna, Austria
Sega, Marcello
Fabian, Balazs
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Budapest Univ Technol & Econ, Dept Inorgan & Analyt Chem, Szt Gellert Ter 4, H-1111 Budapest, Hungary
Univ Bourgogne Franche Comte, CNRS, UMR 6213, Inst UTINAM, 16 Route Gray, F-25030 Besancon, FranceUniv Vienna, Fac Phys, Boltzmanngasse 5, A-1090 Vienna, Austria
Fabian, Balazs
Imre, Attila R.
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MTA Ctr Energy Res, POB 49, H-1525 Budapest, Hungary
Budapest Univ Technol & Econ, Dept Energy Engn, Muegyet Rkp 3, H-1111 Budapest, HungaryUniv Vienna, Fac Phys, Boltzmanngasse 5, A-1090 Vienna, Austria
Imre, Attila R.
Jedlovszky, Pal
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Eszterhazy Karoly Univ, Dept Chem, Leanyka Utca 6, H-3300 Eger, Hungary
MTA BME Res Grp Tech Analyt Chem, Szt Gellert Ter 4, H-1111 Budapest, HungaryUniv Vienna, Fac Phys, Boltzmanngasse 5, A-1090 Vienna, Austria