Special issue on compact x-ray sources
Journal of Physics B Atomic Molecular and Optical Physics IOP Publishing 47:23 (2014) 230301
In-depth plasma-wave heating of dense plasma irradiated by short laser pulses.
Physical review letters 113:25 (2014) 255001
Abstract:
We investigate the mechanism by which relativistic electron bunches created at the surface of a target irradiated by a very short and intense laser pulse transfer energy to the deeper parts of the target. In existing theories, the dominant heating mechanism is that of resistive heating by the neutralizing return current. In addition to this, we find that large amplitude plasma waves are induced in the plasma in the wake of relativistic electron bunches. The subsequent collisional damping of these waves represents a source of heating that can exceed the resistive heating rate. As a result, solid targets heat significantly faster than has been previously considered. A new hybrid model, capable of reproducing these results, is described.Non-thermal enhancement of electron–positron pair creation in burning thermonuclear laboratory plasmas
High Energy Density Physics Elsevier 13 (2014) 9-12
Quantum theory of Thomson scattering
High Energy Density Physics Elsevier 13 (2014) 55-83
FLASH MHD simulations of experiments that study shock-generated magnetic fields
High Energy Density Physics Elsevier 17:Part A (2014) 24-31