English

Evolution of laser-driven magnetic fields from proton tomography

Plasma Physics 2026-03-20 v1

Abstract

Self-generated magnetic fields are commonly produced in high-power laser-plasma interactions. These fields can inhibit plasma heat-flow which makes them important in inertial fusion and controlled laboratory astrophysics experiments. In this work, we characterize the time evolution of self-generated magnetic fields using multi-view proton tomography at two timings. Tomographic reconstructions of the magnetic field show a clear transition from fields located close to the target at early time to more extended coronal fields at later time. The tomographic inversion and mesh radiography also enable a direct measurement of the magnetic-flux evolution. Comparisons with extended-MHD simulations show only moderate agreement in field structure, but good agreement in magnetic flux. This suggests that the field generation model is largely correct under these conditions, while the magnetic transport model requires additional development to reproduce the observed field structure.

Keywords

Cite

@article{arxiv.2603.18931,
  title  = {Evolution of laser-driven magnetic fields from proton tomography},
  author = {J. Griff-McMahon and V. Valenzuela-Villaseca and C. A. Walsh and S. Malko and B. McCluskey and K. Lezhnin and H. Landsberger and L. Berzak Hopkins and G. Fiksel and M. J. Rosenberg and D. B. Schaeffer and W. Fox},
  journal= {arXiv preprint arXiv:2603.18931},
  year   = {2026}
}

Comments

16 pages, 15 figures

R2 v1 2026-07-01T11:28:11.701Z