[1] HORÁNYI M, SZALAY J R, KEMPF S, et al. A permanent, asymmetric dust cloud around the Moon[J]. Nature, 2015, 522(7556):324-326.
[2] SLíZ-BALOGH J, BARTA A, HORVÁTH G. Celestial mechanics and polarization optics of the Kordylewski dust cloud in the Earth-Moon Lagrange point L5-Part II. Imaging polarimetric observation:New evidence for the existence of Kordylewski dust cloud[J]. Monthly Notices of the Royal Astronomical Society, 2018, 482(1):762-770.
[3] BURNS J A, HAMILTON D P, SHOWALTER M R. Dusty rings and circumplanetary dust:Observations and simple physics[M]//GRÜN E, GUSTAFSON B Å S, DERMOTT S, et al. Interplanetary Dust. Berlin:Springer, 2001:641-725.
[4] 李中元. 空间尘埃动力学的研究动向[J]. 天文学进展, 2001, 19(2):161-166. LI Z Y. A research in the space dust dynamics[J]. Progress in Astronomy, 2001, 19(2):161-166. (in Chinese)
[5] 石志东, 李中元. 太阳系尘埃等离子体研究[J]. 天文学进展, 1998, 16(3):227-236. SHI Z D, LI Z Y. Study on dust plasma in Solar System[J]. Progress in Astronomy, 1998, 16(3):227-236. (in Chinese)
[6] SPAHN F, SACHSE M, SEIß M, et al. Circumplanetary dust populations[J]. Space Science Reviews, 2019, 215(1):11.
[7] SZALAY J R, POPPE A R, AGARWAL J, et al. Dust phenomena relating to airless bodies[J]. Space Science Reviews, 2018, 214(5):98.
[8] KOSCHNY D, SOJA R H, ENGRAND C, et al. Interplanetary dust, meteoroids, meteors and meteorites[J]. Space Science Reviews, 2019, 215(4):34.
[9] 中国国家航天局. 小行星探测任务有效载荷和搭载项目机遇公告[EB/OL].[2019-04-19]. http://www.cnsa.gov.cn/n6758823/n6758839/c6805886/content.html.China National Space Administration. Announcement of opportunities for scientific payloads and projects onboard asteroid exploration mission[EB/OL].[2019-04-19]. http://www.cnsa.gov.cn/n6758823/n6758839/c6805886/content.html. (in Chinese)
[10] 赵呈选, 郭文瑾. 空间尘埃探测方案研究[J]. 真空与低温, 2013, 19(1):36-39. ZHAO C X, GUO W J. Scheme study of space dust particles detection[J]. Vacuum and Cryogenics, 2013, 19(1):36-39. (in Chinese)
[11] LIU X D, SCHMIDT J. Dust in the Jupiter system outside the rings[J]. Astrodynamics, 2019, 3(1):17-29.
[12] KOSCHNY D, GRÜN E. Impacts into ice-silicate mixtures:Crater morphologies, volumes, depth-to-diameter ratios, and yield[J]. Icarus, 2001, 154(2):391-401.
[13] KOSCHNY D, GRÜN E. Impacts into ice-silicate mixtures:Ejecta mass and size distributions[J]. Icarus, 2001, 154(2):402-411.
[14] KRIVOV A V, SREMČEVIĆ M, SPAHN F, et al. Impact-generated dust clouds around planetary satellites:Spherically symmetric case[J]. Planetary and Space Science, 2003, 51(3):251-269.
[15] KRÜGER H, KRIVOV A V, GRÜN E. A dust cloud of Ganymede maintained by hypervelocity impacts of interplanetary micrometeoroids[J]. Planetary and Space Science, 2000, 48(15):1457-1471.
[16] KRÜGER H, HORÁNYI M, KRIVOV A V, et al. Jovian dust:Streams, clouds and rings[M]//BAGENAL F, DOWLING T E, MCKINNON W B. Jupiter:The Planet, Satellites and Magnetosphere. Cambridge:Cambridge University Press, 2004:219-240.
[17] BUHL E, SOMMER F, POELCHAU M H, et al. Ejecta from experimental impact craters:Particle size distribution and fragmentation energy[J]. Icarus, 2014, 237:131-142.
[18] BURNS J A, LAMY P L, SOTER S. Radiation forces on small particles in the solar system[J]. Icarus, 1979, 40(1):1-48.
[19] MIGNARD F. Effects of radiation forces on dust particles in planetary rings[M]//GREENBERG R, BRAHIC A. Planetary Rings. Tucson:University of Arizona Press, 1984:333-366.
[20] MISHCHENKO M I, DLUGACH J M, YANOVITSKIJ E G, et al. Bidirectional reflectance of flat, optically thick particulate layers:An efficient radiative transfer solution and applications to snow and soil surfaces[J]. Journal of Quantitative Spectroscopy and Radiative Transfer, 1999, 63(2-6):409-432.
[21] MISHCHENKO M I, TRAVIS L D, LACIS A A. Scattering, absorption, and emission of light by small particles[M]. Cambridge:Cambridge University Press, 2002.
[22] LIU X D, SACHSE M, SPAHN F, et al. Dynamics and distribution of Jovian dust ejected from the Galilean satellites[J]. Journal of Geophysical Research:Planets, 2016, 121(7):1141-1173.
[23] LIU X D, SCHMIDT J. Dust arcs in the region of Jupiter's Trojan asteroids[J]. Astronomy & Astrophysics, 2018, 609:A57.
[24] KRIVOV A V, WARDINSKI I, SPAHN F, et al. Dust on the outskirts of the Jovian system[J]. Icarus, 2002, 157(2):436-455.
[25] VERBISCER A J, SKRUTSKIE M F, HAMILTON D P. Saturn's largest ring[J]. Nature, 2009, 461(7267):1098-1100.
[26] JEWITT D C, MEECH K J. Surface brightness profiles of 10 comets[J]. The Astrophysical Journal, 1987, 317:992-1001.
[27] HAMILTON D P. Motion of dust in a planetary magnetosphere:Orbit-averaged equations for oblateness, electromagnetic, and radiation forces with application to Saturn's E ring[J]. Icarus, 1993, 101(2):244-264.
[28] STERN D P. Representation of magnetic fields in space[J]. Reviews of Geophysics, 1976, 14(2):199-214.
[29] HORÁNYI M, MORFILL G, GRÜN E. Mechanism for the acceleration and ejection of dust grains from Jupiter's magnetosphere[J]. Nature, 1993, 363(6425):144-146.
[30] HORÁNYI M, MORFILL G, GRÜN E. The dusty ballerina skirt of Jupiter[J]. Journal of Geophysical Research:Space Physics, 1993, 98(A12):21245-21251.
[31] GUSTAFSON B A S. Physics of zodiacal dust[J]. Annual Review of Earth and Planetary Sciences, 1994, 22(1):553-595.
[32] PARKER E N. Dynamics of the interplanetary gas and magnetic fields[J]. The Astrophysical Journal, 1958, 128:664.
[33] LANDGRAF M. Modeling the motion and distribution of interstellar dust inside the heliosphere[J]. Journal of Geophysical Research:Space Physics, 2000, 105(A5):10303-10316.
[34] DRAINE B T, SALPETER E E. On the physics of dust grains in hot gas[J]. The Astrophysical Journal, 1979, 231:77-94.
[35] MORFILL G E, GRÜN E, JOHNSON T V. Dust in Jupiter's magnetosphere:Physical processes[J]. Planetary and Space Science, 1980, 28(12):1087-1100.
[36] KRESAK L. Orbital evolution of the dust streams released from comets[J]. Astronomical Institutes of Czechoslovakia, Bulletin, 1976, 27(1):35-46.
[37] JACKSON A A, ZOOK H A. Orbital evolution of dust particles from comets and asteroids[J]. Icarus, 1992, 97(1):70-84.
[38] LIOU J C, ZOOK H A. An asteroidal dust ring of micron-sized particles trapped in the 1:1 mean motion resonance with Jupiter[J]. Icarus, 1995, 113(2):403-414.
[39] LIU X D, SCHMIDT J. Comparison of the orbital properties of Jupiter Trojan asteroids and Trojan dust[J]. Astronomy & Astrophysics, 2018, 614:A97.
[40] KRIVOV A V, KRÜGER H, GRÜN E, et al. A tenuous dust ring of Jupiter formed by escaping ejecta from the Galilean satellites[J]. Journal of Geophysical Research:Planets, 2002, 107(E1):5002.
[41] HAMILTON D P, KRIVOV A V. Circumplanetary dust dynamics:Effects of solar gravity, radiation pressure, planetary oblateness, and electromagnetism[J]. Icarus, 1996, 123(2):503-523.
[42] HAMILTON D P, KRIVOV A V. Dynamics of distant moons of asteroids[J]. Icarus, 1997, 128(1):241-249.
[43] DIKAREV V V. Dynamics of particles in Saturn's E ring:Effects of charge variations and the plasma drag force[J]. Astronomy and Astrophysics, 1999, 346:1011-1019.
[44] JUHÁSZ A, HORÁNYI M. Saturn's E ring:A dynamical approach[J]. Journal of Geophysical Research:Space Physics, 2002, 107(A6):SMP 1-1-SMP 1-10.
[45] HORÁNYI M. Charged dust dynamics in the Solar System[J]. Annual Review of Astronomy and Astrophysics, 1996, 34(1):383-418.
[46] STERNGLASS E J. Theory of secondary electron emission under electron bombardment:Scientific paper 6-94410-2-P9[R]. Pittsburgh:Westinghause Research Laboratories, 1957.
[47] KIMURA H, MANN I. Filtering of the interstellar dust flow near the heliopause:The importance of secondary electron emission for the grain charging[J]. Earth, Planets and Space, 1999, 51(11):1223-1232.
[48] CHOW V W, MENDIS D A, ROSENBERG M. Role of grain size and particle velocity distribution in secondary electron emission in space plasmas[J]. Journal of Geophysical Research:Space Physics, 1993, 98(A11):19065-19076.
[49] DZHANOEV A R, SCHMIDT J, LIU X, et al. Charging of small grains in a space plasma:Application to Jovian stream particles[J]. Astronomy & Astrophysics, 2016, 591:A147.
[50] JURAC S, JOHNSON R E, DONN B. Monte Carlo calculations of the sputtering of grains:Enhanced sputtering of small grains[J]. The Astrophysical Journal, 1998, 503(1):247-252.
[51] JURAC S, JOHNSON R E, RICHARDSON J D. Saturn's E ring and production of the neutral torus[J]. Icarus, 2001, 149(2):384-396.
[52] JOHNSON R E, FAMÁ M, LIU M, et al. Sputtering of ice grains and icy satellites in Saturn's inner magnetosphere[J]. Planetary and Space Science, 2008, 56(9):1238-1243.
[53] SITTLER E C JR, ANDRE N, BLANC M, et al. Ion and neutral sources and sinks within Saturn's inner magnetosphere:Cassini results[J]. Planetary and Space Science, 2008, 56(1):3-18.
[54] FAMÁ M, SHI J, BARAGIOLA R A. Sputtering of ice by low-energy ions[J]. Surface Science, 2008, 602(1):156-161.
[55] TAMAYO D, BURNS J A, HAMILTON D P, et al. Finding the trigger to Iapetus' odd global albedo pattern:Dynamics of dust from Saturn's irregular satellites[J]. Icarus, 2011, 215(1):260-278.
[56] HAMILTON D P, SKRUTSKIE M F, VERBISCER A J, et al. Small particles dominate Saturn's Phoebe ring to surprisingly large distances[J]. Nature, 2015, 522(7555):185-187.
[57] BOTTKE W F, VOKROUHLICKY D, NESVORNY D, et al. Black rain:The burial of the Galilean satellites in irregular satellite debris[J]. Icarus, 2013, 223(2):775-795.
[58] BURNS J A, SHOWALTER M R, HAMILTON D P, et al. The formation of Jupiter's faint rings[J]. Science, 1999, 284(5417):1146-1150.
[59] DIKAREV V V, KRIVOV A V, GRÜN E. Two stages of dust delivery from satellites to planetary rings[J]. Planetary and Space Science, 2006, 54(9-10):1014-1023.
[60] HAMILTON D P. A comparison of Lorentz, planetary gravitational, and satellite gravitational resonances[J]. Icarus, 1994, 109(2):221-240.
[61] HEDMAN M M, MURRAY C D, COOPER N J, et al. Three tenuous rings/arcs for three tiny moons[J]. Icarus, 2009, 199(2):378-386.
[62] SUN K L, SEIß M, HEDMAN M M, et al. Dust in the arcs of Methone and Anthe[J]. Icarus, 2017, 284:206-215.
[63] SCHAFFER L, BURNS J A. Lorentz resonances and the vertical structure of dusty rings:Analytical and numerical results[J]. Icarus, 1992, 96(1):65-84.
[64] HORÁNYI M, BURNS J A. Charged dust dynamics:Orbital resonance due to planetary shadows[J]. Journal of Geophysical Research:Space Physics, 1991, 96(A11):19283-19289.
[65] HAMILTON D P, KRÜGER H. The sculpting of Jupiter's gossamer rings by its shadow[J]. Nature, 2008, 453(7191):72-75.
[66] ARTEM'EV A V. On the problem of magnetogravitational capture[J]. Solar System Research, 1968, 2:202-213.
[67] MENDIS D A, AXFORD W I. Satellites and magnetospheres of the outer planets[J]. Annual Review of Earth and Planetary Sciences, 1974, 2(1):419-474.
[68] COLWELL J E, HORÁNYI M, GRÜN E. Capture of interplanetary and interstellar dust by the Jovian magnetosphere[J]. Science, 1998, 280(5360):88-91.
[69] MITCHELL C J, COLWELL J E, HORÁNYI M. Tenuous ring formation by the capture of interplanetary dust at Saturn[J]. Journal of Geophysical Research:Space Physics, 2005, 110(A9):A09218.
[70] COLWELL J E, HORÁNYI M. Magnetospheric effects on micrometeoroid fluxes[J]. Journal of Geophysical Research:Planets, 1996, 101(E1):2169-2175.
[71] COLWELL J E, HORÁNYI M, GRÜN E. Jupiter's exogenic dust ring[J]. Journal of Geophysical Research:Planets, 1998, 103(E9):20023-20030.
[72] HORÁNYI M. New Jovian ring?[J]. Geophysical Research Letters, 1994, 21(11):1039-1042.
[73] MITCHELL C J, COLWELL J E, HORÁNYI M. Dust capture by the Saturnian magnetosphere[J]. IEEE Transactions on Plasma Science, 2004, 32(2):598-600.