Driving Iron plasmas to stellar core conditions using extreme x-ray radiation

Authors:

Hae Ja Lee, Sam Vinko, Oliver Humphries, Eric Galtier, Ryan Royle, Muhammad Kasim, Shenyuan Ren, Roberto Alonso-Mori, Phillip Heimann, Mengning Liang, Matt Seaberg, Sébastien Boutet, Andrew A Aquila, Shaughnessy Brown, Akel Hashim, Mikako Makita, Christian David, Gediminas Seniutinas, Hyun-Kyung Chung, Gilliss Dyer, Justin Wark, Bob Nagler

Dynamical development of strength and stability of asteroid material under 440 GeV proton beam irradiation

Nature Communications Nature Research (part of Springer Nature)

Authors:

M Bochmann, K-G Schlesinger, C Arrowsmith, P Alexaki, M Alfonso Poza, M Ambarki, E Andersen, P Bilbao, R Bingham, F Cruz, A Ebn Rahmoun, A Goillot, J Halliday, Bt Huffman, E Kamenicka, M Lazzaroni, E Los, Jm Quetsch, B Reville, P Rousiadou, S Sarkar, L Silva, P Simon, E Soria, V Stergiou, S Zhang, N Charitonidis, Gianluca Gregori

Dynamical development of strength and stability of asteroid material under 440 GeV proton beam irradiation

Authors:

Melanie Bochmann, Karl-Georg Schlesinger, Charles Arrowsmith, Paraskevi Alexaki, Marta Alfonso Poza, Mohamed Ambarki, Emily Andersen, Pablo Bilbao, Robert Bingham, Filipe Cruz, Aboubakr Ebn Rahmoun, Alice Goillot, Jonathan Halliday, Brian Huffman, Eva Kamenicka, Michael Lazzaroni, Eva Los, Jean-Marc Quetsch, Brian Reville, Panagiota Rousiadou, Subir Sarkar, Luis Silva, Pascal Simon, Enrica Soria, Vasiliki Stergiou, Sifei Zhang, Nikolaos Charitonidis, Gianluca Gregori

Enabling the Realisation of Proton Tomography

Authors:

Ben T Spiers, Ramy Aboushelbaya, Qingsong Feng, Marko W Mayr, Iustin Ouatu, Robert W Paddock, Robin Timmis, Robin HW Wang, Peter A Norreys

Fast Non-Adiabatic Dynamics of Many-Body Quantum Systems

Science Advances Springer Verlag

Authors:

Brett Larder, Dirk Gericke, Scott Richardson, Paul Mabey, Thomas White, Gianluca Gregori

Abstract:

Modeling many-body quantum systems with strong interactions is one of the core challenges of modern physics. A range of methods has been developed to approach this task, each with its own idiosyncrasies, approximations, and realm of applicability. Perhaps the most successful and ubiquitous of these approaches is density functional theory (DFT). Its Kohn-Sham formulation has been the basis for many fundamental physical insights, and it has been successfully applied to fields as diverse as quantum chemistry, condensed matter and dense plasmas. Despite the progress made by DFT and related schemes, however, there remain many problems that are intractable for existing methods. In particular, many approaches face a huge computational barrier when modeling large numbers of coupled electrons and ions at finite temperature. Here, we address this shortfall with a new approach to modeling many-body quantum systems. Based on the Bohmian trajectories formalism, our new method treats the full particle dynamics with a considerable increase in computational speed. As a result, we are able to perform large-scale simulations of coupled electron-ion systems without employing the adiabatic Born-Oppenheimer approximation.