<i>Ab initio</i> simulations of dynamics of EMI-BF4 ionic liquid propellant used in electrospray thrusters for nanosatellite applications

G George Baffour Pipim (Department of Chemistry, University of Southern California 2 , Los Angeles, California 90089,) K Kevin D. Sampson (Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,) J Jose Torres (Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,) N Noah Tingey (Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,) K Kylar Flynn (Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,) D Daniel Depew (Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,) J Joseph Wang (Aiiso Yufeng Li Family Department of Chemical and Nano Engineering) A Anna I. Krylov (Department of Chemistry, University of Southern California 1 , Los Angeles, California 90089,)

Abstract

Detailed quantum-chemistry calculations of field-induced fragmentation reactions of ionic liquids are presented. The simulations identified the most likely channels for hard (breaking covalent bonds) fragmentation. The computed energetics for hard and soft (breaking clusters into moieties) fragmentation can be incorporated in multiscale models of thrusters’ operation. The simulations determined that soft fragmentation occurs on a picosecond timescale, revealing that these large and flexible ions can be heated when accelerated by the electric field. Although the acquired internal kinetic energy is not sufficient to break covalent bonds in cold molecules, it can result in the fragmentation of hotter molecules. The results contribute to a better understanding of processes occurring in thrusters that use ionic liquids as propellants and suggest that deviations from the idealized behavior of the propellant (as charged point-mass particles) in the acceleration region might be important. The results of this study provide a foundation for further improvement of multi-scale models of thrusters’ operation.

Article Details

Volume / Issue Vol. 163, Issue 22
Published December 14, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (8)

G

George Baffour Pipim

Department of Chemistry, University of Southern California 2 , Los Angeles, California 90089,

K

Kevin D. Sampson

Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,

J

Jose Torres

Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,

N

Noah Tingey

Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,

K

Kylar Flynn

Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,

D

Daniel Depew

Department of Astronautical Engineering, University of Southern California 1 , Los Angeles, California 90089,

J

Joseph Wang

Aiiso Yufeng Li Family Department of Chemical and Nano Engineering

A

Anna I. Krylov

Department of Chemistry, University of Southern California 1 , Los Angeles, California 90089,