Short-pulse laser-driven x-ray radiography

HIGH POWER LASER SCIENCE AND ENGINEERING 4 (2016) ARTN e30

Authors:

E Brambrink, S Baton, M Koenig, R Yurchak, N Bidaut, B Albertazzi, JE Cross, G Gregori, A Rigby, E Falize, A Pelka, F Kroll, S Pikuz, Y Sakawa, N Ozaki, C Kuranz, M Manuel, C Li, P Tzeferacos, D Lamb

QED-driven laser absorption

(2016)

Authors:

MC Levy, TG Blackburn, N Ratan, J Sadler, CP Ridgers, M Kasim, L Ceurvorst, J Holloway, MG Baring, AR Bell, SH Glenzer, G Gregori, A Ilderton, M Marklund, M Tabak, SC Wilks

Guiding of relativistic electron beams in dense matter by longitudinally imposed strong magnetic fields

(2016)

Authors:

M Bailly-Grandvaux, JJ Santos, C Bellei, P Forestier-Colleoni, S Fujioka, L Giuffrida, JJ Honrubia, D Batani, R Bouillaud, M Chevrot, JE Cross, R Crowston, S Dorard, J-L Dubois, M Ehret, G Gregori, S Hulin, S Kojima, E Loyez, J-R Marques, A Morace, Ph Nicolai, M Roth, S Sakata, G Schaumann, F Serres, J Servel, VT Tikhonchuk, N Woolsey, Z Zhang

Experimental measurements of the collisional absorption of XUV radiation in warm dense aluminium.

Physical review. E 94:2-1 (2016) 023203-023203

Authors:

B Kettle, T Dzelzainis, S White, L Li, B Dromey, M Zepf, CL Lewis, G Williams, S Künzel, M Fajardo, H Dacasa, P Zeitoun, A Rigby, G Gregori, C Spindloe, R Heathcote, D Riley

Abstract:

The collisional (or free-free) absorption of soft x rays in warm dense aluminium remains an unsolved problem. Competing descriptions of the process exist, two of which we compare to our experimental data here. One of these is based on a weak scattering model, another uses a corrected classical approach. These two models show distinctly different behaviors with temperature. Here we describe experimental evidence for the absorption of 26-eV photons in solid density warm aluminium (T_{e}≈1 eV). Radiative x-ray heating from palladium-coated CH foils was used to create the warm dense aluminium samples and a laser-driven high-harmonic beam from an argon gas jet provided the probe. The results indicate little or no change in absorption upon heating. This behavior is in agreement with the prediction of the corrected classical approach, although there is not agreement in absolute absorption value. Verifying the correct absorption mechanism is decisive in providing a better understanding of the complex behavior of the warm dense state.

Dynamic X-ray diffraction observation of shocked solid iron up to 170 GPa.

Proceedings of the National Academy of Sciences of the United States of America 113:28 (2016) 7745-7749

Authors:

A Denoeud, N Ozaki, A Benuzzi-Mounaix, H Uranishi, Y Kondo, R Kodama, E Brambrink, A Ravasio, M Bocoum, JM Boudenne, M Harmand, F Guyot, S Mazevet, D Riley, M Makita, T Sano, Y Sakawa, Y Inubushi, G Gregori, M Koenig, G Morard

Abstract:

Investigation of the iron phase diagram under high pressure and temperature is crucial for the determination of the composition of the cores of rocky planets and for better understanding the generation of planetary magnetic fields. Here we present X-ray diffraction results from laser-driven shock-compressed single-crystal and polycrystalline iron, indicating the presence of solid hexagonal close-packed iron up to pressure of at least 170 GPa along the principal Hugoniot, corresponding to a temperature of 4,150 K. This is confirmed by the agreement between the pressure obtained from the measurement of the iron volume in the sample and the inferred shock strength from velocimetry deductions. Results presented in this study are of the first importance regarding pure Fe phase diagram probed under dynamic compression and can be applied to study conditions that are relevant to Earth and super-Earth cores.