Theoretical ion sputtering yields from loose powders using a multiscale Monte Carlo approach

S S. Verkercke (LATMOS/CNRS, Université Versailles Saint Quentin 1 , Guyancourt,) D D. Berhanu (Department of Science and Mathematics, Fashion Institute of Technology 4 , New York, New York 10001,) C C. Bu (Columbia Astrophysics Laboratory, Columbia University 5 , New York, New York 10027,) B B. Clouter-Gergen (Memorial 6 Department of Engineering and Applied Science, , St. John’s NLA1C 5S7,) F F. Leblanc (LATMOS/CNRS, Sorbonne Université 7 , Paris,) J J. R. Lewis (Memorial 6 Department of Engineering and Applied Science, , St. John’s NLA1C 5S7,) L L. S. Morrissey (Memorial 6 Department of Engineering and Applied Science, , St. John’s NLA1C 5S7,) D D. W. Savin

Abstract

Ion sputtering from loose powders remains poorly understood despite its relevance to planetary science and industry. We developed a multiscale Monte Carlo model to simulate sputtering from powders, using a higher-fidelity approach for the target geometry compared to voxel-based methods. Simulating Kr+ ions impacting Cu powders and flat slabs, we show that sputtering from loose powders differs markedly from that of flat slabs or rough surfaces. The main differences are: (1) for incident angles α > 0° relative to the bulk normal, the escaping sputtering yield is dominated by backward-directed ejecta for all ion energies; (2) for α ≤ 60°, the yield peaks toward the ion-beam origin, similar to the opposition effect seen in optical observations of airless bodies; (3) the angular distribution peak is half or less than that of a flat slab; (4) as ion energy increases, no evolution occurs from primary to secondary knock-on sputtering in the ejecta angular distribution. We attribute these behaviors to the powder's interconnected voids. Ions penetrate these voids and sputter underlying grains; the ejecta then preferentially escape toward the ion-beam origin, where shadowing is minimal. We derive two fitting functions: (1) relating the escaping sputtering yield of a powder to that of a flat surface, depending only on porosity, incident angle, mean local incidence angle, and the corresponding flat slab yield; (2) providing the double-differential angular distribution of the escaping ejecta for porosities ≥0.49. These provide a potentially universal fitting function of the absolute doubly differential escaping sputtering yield from loose powders.

Article Details

Volume / Issue Vol. 139, Issue 14
Published April 14, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (8)

S

S. Verkercke

LATMOS/CNRS, Université Versailles Saint Quentin 1 , Guyancourt,

D

D. Berhanu

Department of Science and Mathematics, Fashion Institute of Technology 4 , New York, New York 10001,

C

C. Bu

Columbia Astrophysics Laboratory, Columbia University 5 , New York, New York 10027,

B

B. Clouter-Gergen

Memorial 6 Department of Engineering and Applied Science, , St. John’s NLA1C 5S7,

F

F. Leblanc

LATMOS/CNRS, Sorbonne Université 7 , Paris,

J

J. R. Lewis

Memorial 6 Department of Engineering and Applied Science, , St. John’s NLA1C 5S7,

L

L. S. Morrissey

Memorial 6 Department of Engineering and Applied Science, , St. John’s NLA1C 5S7,

D

D. W. Savin