Equation of state measurements of warm dense carbon using laser-driven shock and release technique
We present a new approach to equation of state experiments that utilizes a laser-driven shock and release technique combined with spatially resolved x-ray Thomson scattering, radiography, velocity interferometry, and optical pyrometry to obtain independent measurements of pressure, density, and temp...
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Published in | Physical review letters Vol. 112; no. 15; p. 155003 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
Published |
United States
18.04.2014
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Online Access | Get more information |
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Summary: | We present a new approach to equation of state experiments that utilizes a laser-driven shock and release technique combined with spatially resolved x-ray Thomson scattering, radiography, velocity interferometry, and optical pyrometry to obtain independent measurements of pressure, density, and temperature for carbon at warm dense matter conditions. The uniqueness of this approach relies on using a laser to create very high initial pressures to enable a very deep release when the shock moves into a low-density pressure standard. This results in material at near normal solid density and temperatures around 10 eV. The spatially resolved Thomson scattering measurements facilitate a temperature determination of the released material by isolating the scattering signal from a specific region in the target. Our results are consistent with quantum molecular dynamics calculations for carbon at these conditions and are compared to several equation of state models. |
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ISSN: | 1079-7114 |
DOI: | 10.1103/physrevlett.112.155003 |