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[AM20]

SJ Araki and RS Martin. Interspecies fractional collisions. Physics of Plasmas, 2020.

[BGH+83]

KL Bell, HB Gilbody, JG Hughes, AE Kingston, and FJ Smith. Recommended data on the electron impact ionization of light atoms and ions. Journal of physical and chemical reference data, 12(4):891–916, 1983.

[Bir94]

Graeme A Bird. Molecular gas dynamics and the direct simulation of gas flows. Molecular gas dynamics and the direct simulation of gas flows, 1994.

[C+84]

Francis F Chen and others. Introduction to plasma physics and controlled fusion. Volume 1. Springer, 1984.

[Dav88]

SF Davis. Simplified second-order godunov-type methods. SIAM Journal on Scientific and Statistical Computing, 9(3):445–473, 1988.

[DC21]

Jon T Drobny and Davide Curreli. Rustbca: a high-performance binary-collision-approximation code for ion-material interactions. Journal of Open Source Software, 6(64):3298, 2021.

[EC20]

Moutaz Elias and Davide Curreli. An explicit scheme to enforce charge conservation in transient particle-in-cell simulations with maxwell-boltzmann electrons. Journal of Computational Physics, 409:109320, 2020. URL: https://www.sciencedirect.com/science/article/pii/S0021999120300942, doi:https://doi.org/10.1016/j.jcp.2020.109320.

[Fit14]

Richard Fitzpatrick. Plasma physics: an introduction. Crc Press, 2014.

[GB59]

Sergei K Godunov and I Bohachevsky. Finite difference method for numerical computation of discontinuous solutions of the equations of fluid dynamics. Matematičeskij sbornik, 47(3):271–306, 1959.

[LBG+88]

MA Lennon, KL Bell, HB Gilbody, JG Hughes, AE Kingston, MJ Murray, and FJ Smith. Recommended data on the electron impact ionization of atoms and ions: fluorine to nickel. Journal of Physical and Chemical Reference Data, 17(3):1285–1363, 1988.

[LOC94]

Xu-Dong Liu, Stanley Osher, and Tony Chan. Weighted essentially non-oscillatory schemes. Journal of computational physics, 115(1):200–212, 1994.

[Mar16]

Robert Martin. Conservative bin-to-bin fractional collisions. In AIP Conference Proceedings, volume 1786. AIP Publishing, 2016.

[MRH+23]

LT Meredith, M Rezazadeh, MF Huq, J Drobny, VV Srinivasaragavan, O Sahni, and D Curreli. Hpic2: a hardware-accelerated, hybrid particle-in-cell code for dynamic plasma-material interactions. Computer Physics Communications, 283:108569, 2023.

[MRS15]

Scott A Moe, James A Rossmanith, and David C Seal. A simple and effective high-order shock-capturing limiter for discontinuous galerkin methods. arXiv preprint arXiv:1507.03024, 2015.

[RW96]

Sergej Rjasanow and Wolfgang Wagner. A stochastic weighted particle method for the boltzmann equation. Journal of Computational Physics, 124(2):243–253, 1996.

[Rus61]

VV Rusanov. Calculation of interaction of non-steady shock waves with obstacles. J. Comput. Math. Phys. USSR, 1:267–279, 1961.

[Tor13]

Eleuterio F Toro. Riemann solvers and numerical methods for fluid dynamics: a practical introduction. Springer Science & Business Media, 2013.

[TDD+13]

Miles M Turner, Aranka Derzsi, Zoltan Donko, Denis Eremin, Sean J Kelly, Trevor Lafleur, and Thomas Mussenbrock. Simulation benchmarks for low-pressure plasmas: capacitive discharges. Physics of Plasmas, 2013.

[VDB+93]

V Vahedi, G DiPeso, CK Birdsall, MA Lieberman, and TD Rognlien. Capacitive rf discharges modelled by particle-in-cell monte carlo simulation. i. analysis of numerical techniques. Plasma Sources Science and Technology, 2(4):261, 1993.

[VR50]

John VonNeumann and Robert D Richtmyer. A method for the numerical calculation of hydrodynamic shocks. Journal of applied physics, 21(3):232–237, 1950.