Inefficient magnetic-field amplification in supersonic laser-plasma turbulence

(2020)

Authors:

AFA Bott, L Chen, G Boutoux, T Caillaud, A Duval, M Koenig, B Khiar, I Lantuéjoul, L Le-Deroff, B Reville, R Rosch, D Ryu, C Spindloe, B Vauzour, B Villette, AA Schekochihin, DQ Lamb, P Tzeferacos, G Gregori, A Casner

Investigating off-Hugoniot states using multi-layer ring-up targets

Scientific Reports Springer Nature 10:1 (2020) 13172

Authors:

D McGonegle, Pg Heighway, M Sliwa, Ca Bolme, Aj Comley, Le Dresselhaus-Marais, A Higginbotham, Aj Poole, Ee McBride, B Nagler, I Nam, Mh Seaberg, Ba Remington, Re Rudd, Ce Wehrenberg, Js Wark

Abstract:

Laser compression has long been used as a method to study solids at high pressure. This is commonly achieved by sandwiching a sample between two diamond anvils and using a ramped laser pulse to slowly compress the sample, while keeping it cool enough to stay below the melt curve. We demonstrate a different approach, using a multilayer ‘ring-up’ target whereby laser-ablation pressure compresses Pb up to 150 GPa while keeping it solid, over two times as high in pressure than where it would shock melt on the Hugoniot. We find that the efficiency of this approach compares favourably with the commonly used diamond sandwich technique and could be important for new facilities located at XFELs and synchrotrons which often have higher repetition rate, lower energy lasers which limits the achievable pressures that can be reached.

Time-resolved fast turbulent dynamo in a laser plasma

(2020)

Authors:

AFA Bott, P Tzeferacos, L Chen, CAJ Palmer, A Rigby, A Bell, R Bingham, A Birkel, C Graziani, DH Froula, J Katz, M Koenig, MW Kunz, CK Li, J Meinecke, F Miniati, R Petrasso, H-S Park, BA Remington, B Reville, JS Ross, D Ryu, D Ryutov, F Séguin, TG White, AA Schekochihin, DQ Lamb, G Gregori

Nonlinear wakefields and electron injection in cluster plasma

(2020)

Authors:

Marko Mayr, Ben Spiers, Ramy Aboushelbaya, Robert Paddock, James Sadler, Charles Sillett, Robin Wang, Karl Krushelnick, Peter Norreys

Recovery of a high-pressure phase formed under laser-driven compression

Physical Review B American Physical Society 102:2 (2020) 24101

Authors:

Mg Gorman, David McGonegle, Sj Tracy, Sm Clarke, Ca Bolme, Ae Gleason, Sj Ali, S Hok, Cw Greeff, Patrick Heighway, K Hulpach, B Glam, E Galtier, Hj Lee, Js Wark, Jh Eggert, Jk Wicks, Rf Smith

Abstract:

The recovery of metastable structures formed at high pressure has been a long-standing goal in the field of condensed matter physics. While laser-driven compression has been used as a method to generate novel structures at high pressure, to date no high-pressure phases have been quenched to ambient conditions. Here we demonstrate, using in situ x-ray diffraction and recovery methods, the successful quench of a high-pressure phase which was formed under laser-driven shock compression. We show that tailoring the pressure release path from a shock-compressed state to eliminate sample spall, and therefore excess heating, increases the recovery yield of the high-pressure ω phase of zirconium from 0% to 48%. Our results have important implications for the quenchability of novel phases of matter demonstrated to occur at extreme pressures using nanosecond laser-driven compression.