Time-resolved Raman spectroscopy of hexafluorobenzene (C6F6 ) under laser-driven shock compression

被引:3
|
作者
Mohan, Ashutosh [1 ]
Chaurasia, S. [1 ,2 ]
Rao, Usha [1 ,3 ]
Pasley, John [4 ]
机构
[1] Bhabha Atom Res Ctr, High Pressure & Synchrotron Radiat Phys Div, Mumbai 400085, Maharashtra, India
[2] HomiBhabha Natl Inst, Mumbai 400094, Maharashtra, India
[3] Univ Mumbai, Mumbai 400032, Maharashtra, India
[4] Univ York, York Plasma Inst, Dept Phys, York YO10 5DQ, N Yorkshire, England
关键词
Laser-driven shock wave; Time-resolved Raman Spectroscopy; Phase transition; Molecular spectroscopy; HIGH-PRESSURE; BENZENE I; DYNAMICS; PLASMA; PHASE; TUMOR; WAVES;
D O I
10.1016/j.jqsrt.2021.107547
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Hexafluorobenzene is used as a cooling fluid in nuclear reactors, in production of pharmaceutical compounds and in prognostic biomarkers. It is useful to understand the dynamics of Hexafluorobenzene under extreme conditions. For the first time, we have performed Time-Resolved Raman Spectroscopy of laser shocked Hexafluorobenzene using a pump-probe technique to study the effect of high pressure at the molecular level and possible phase transitions. A 2 J / 8 ns Nd: YAG laser system is used for generating shock pressures of up to 4.5 GPa in the sample in a confined geometry. Three prominent modes at 370 cm(-1) (e(1g) fundamental mode or nu(10)), 445 cm(-1) (e(2g) fundamental mode or nu(6)) and 560 cm(-1) (a(1g) fundamental mode or nu(1)) exhibit blue shift with scaling factors of 370 + 0.88 P(GPa), 445 + 1.22P(GPa) and 560 + 1.93P(GPa) respectively. A liquid. Phase-II phase transition is observed at a pressure of 0.9 GPa which is very close to the 0.8 GPa pressure at which a phase transition has been reported to occur under static compression. The shock velocity in Hexafluorobenzene at a laser energy of 300 mJ and 500 mJ is calculated by measuring the intensity ratio of Raman modes emerging from the shocked region to that of the whole sample. To validate the experimental results, 1-D radiation hydrodynamics simulations are also performed. Experimentally obtained shock velocities, at a laser intensity of 1.47 GW/cm(2) (300 mJ) and 2.46 GW/cm(2) (500 mJ), are 2.54 km/s and 3.65 km/s respectively which are in close agreement with simulation results of 2.98 km/s and 3.84 km/s respectively. Gruneisen parameters corresponding to the three modes are also calculated which are 0.0 0950 +/- 0.0140 (nu(10) mode), 0.0433 +/- 0.0060 (nu(6) mode), and 0.0561 +/- 0.0044 (nu(1) mode) respectively. (c) 2021 Elsevier Ltd. All rights reserved.
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页数:9
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