Minor Planet Center. Natural Satellites Ephemeris Service (IAU Minor Planet Center, accessed 28 May 2026); https://www.minorplanetcenter.net/iau/NatSats/NaturalSatellites.html
Sheppard, S. S. & Jewitt, D. C. An abundant population of small irregular satellites around Jupiter. Nature 423, 261–263 (2003).
Sheppard, S. S., Tholen, D. J., Alexandersen, M. & Trujillo, C. A. New Jupiter and Saturn satellites reveal new moon dynamical families. Res. Notes AAS 7, 100 (2023).
Grav, T., Holman, M. J., Gladman, B. J. & Aksnes, K. Photometric survey of the irregular satellites. Icarus 166, 33–45 (2003).
Grav, T. & Holman, M. J. Near-infrared photometry of the irregular satellites of Jupiter and Saturn. Astrophys. J. Lett. 605, L141–L144 (2004).
Brown, M. E. & Rhoden, A. R. The 3 μm spectrum of Jupiter’s irregular satellite Himalia. Astrophys. J. Lett. 793, L44 (2014).
Graykowski, A. & Jewitt, D. Colors and shapes of the irregular planetary satellites. Astron. J. 155, 184 (2018).
Vilas, F. & Hendrix, A. R. Clues to the origin of Jovian outer irregular satellites from reflectance spectra. Planet. Sci. J. 5, 34 (2024).
Sharkey, B. N. L., Reddy, V., Kuhn, O., Sanchez, J. A. & Bottke, W. F. Spectroscopic links among giant planet irregular satellites and Trojans. Planet. Sci. J. 4, 223 (2023).
Sharkey, B. N. L. et al. JWST reveals varied origins between Jupiter’s irregular satellites. Planet. Sci. J. 6, 242 (2025).
Jewitt, D. & Haghighipour, N. Irregular satellites of the planets: products of capture in the early Solar System. Annu. Rev. Astron. Astrophys. 45, 261–295 (2007).
Morbidelli, A., Levison, H. F., Tsiganis, K. & Gomes, R. Chaotic capture of Jupiter’s Trojan asteroids in the early Solar System. Nature 435, 462–465 (2005).
Marsden, B. G. MPEC 2003-E29 : S/2003 J 9, 2003 J 10, 2003 J 11, 2003 J 12; S/2003 J 1, 2003 J 6. IAU Minor Planet Center https://www.minorplanetcenter.net/mpec/K03/K03E29.html (2003).
Sheppard, S. S. Moons of Jupiter (Carnegie Science, accessed April 2026); https://sites.google.com/carnegiescience.edu/sheppard/moons/jupitermoons
Boutonnet, A. & Rocchi, A. Feasibility of a Jupiter minor moon flyby for the JUICE mission. In AIAA SciTech 2026 Forum, AIAA 2026-1263 https://doi.org/10.2514/6.2026-1263 (American Institute of Aeronautics and Astronautics, 2026).
Denk, T. et al. Io and the minor Jovian moons—prospects for JUICE. Space Sci. Rev. 222, 27 (2026).
Grav, T. et al. NEOWISE: observations of the irregular satellites of Jupiter and Saturn. Astrophys. J. 809, 3 (2015).
Grasset, O. et al. JUpiter ICy moons Explorer (JUICE): an ESA mission to orbit Ganymede and to characterise the Jupiter system. Planet. Space Sci. 78, 1–21 (2013).
Palumbo, P. et al. The JANUS (Jovis Amorum ac Natorum Undique Scrutator) VIS-NIR multi-band imager for the JUICE mission. Space Sci. Rev. 221, 32 (2025).
Boutonnet, A., Langevin, Y. & Erd, C. Designing the JUICE trajectory. Space Sci. Rev. 220, 67 (2024).
Porco, C. C. et al. Cassini Imaging Science: initial results on Phoebe and Iapetus. Science 307, 1237–1242 (2005).
International Astronomical Union Minor Planet Center. MPC Explorer. IAU Minor Planet Center https://data.minorplanetcenter.net/explorer/?tab=Designated&search=Jupiter+44 (2026).
Vallenari, A. et al. Gaia Data Release 3. Summary of the content and survey properties. Astron. Astrophys. 674, 1–22 (2023).
Buie, M. W. et al. Size and shape constraints of (486958) Arrokoth from stellar occultations. Astron. J. 159, 130 (2020).
Buie, M. W. et al. Occultation-based size and shape of (269) Justitia. Planet. Sci. J. 6, 61 (2025).
Levison, H. F. et al. Interpreting the stellar occultations of (15094) Polymele—a Lucy target. In Asteroids, Comets, Meteors Conference 2023 Abstract 2184 (Lunar and Planetary Institute, 2023).
Buie, M. W., Keeney, B. A., Levison, H. F. & the Lucy Occultation Team. Occultation results for the (15094) Polymele system—a Lucy target. In Asteroids, Comets, Meteors Conference 2023 Abstract 2442 (Lunar and Planetary Institute, 2023).
Lucy Mission Occultation Team. Predicted Stellar Occultations for (15094) Polymele https://lucy.swri.edu/occ/predictions/20240226Polymele/ (2024).
Schnabel, C., Marco, J. & Guhl, K. Collaboration on NASA’s Lucy mission—an awesome experience!. J. Occult. Astron. 12, 3–9 (2022).
Gomes-Júnior, A. R. et al. SORA: stellar occultation reduction and analysis. Mon. Not. R. Astron. Soc. 511, 1167–1181 (2022).
French, R. G. & Souami, D. Earth-based stellar occultation predictions for Jupiter, Saturn, Uranus, Neptune, Titan, and Triton: 2023–2050. Planet. Sci. J. 4, 202 (2023).
Kilic, Y. et al. Occultation Portal: a web-based platform for data collection and analysis of stellar occultations. Mon. Not. R. Astron. Soc. 515, 1346–1357 (2022).
Kollmeier, J. A. & Raymond, S. N. Can moons have moons? Mon. Not. R. Astron. Soc. 483, L80–L84 (2019).
Porter, S. B. et al. High-precision orbit fitting and uncertainty analysis of (486958) 2014 MU69. Astron. J. 156, 20 (2018).
Porter, S. B. & Canup, R. M. Orbits and masses of the small satellites of Pluto. Planet. Sci. J. 4, 120 (2023).
Lamy, P. L., Toth, I., Fernandez, Y. R. & Weaver, H. A. in The Sizes, Shapes, Albedos, and Colors of Cometary Nuclei (eds Festou, M. C. et al.) 223–264 (Univ. of Arizona Press, 2004).
Shevchenko, V. G. et al. Opposition effect of Trojan asteroids. Icarus 217, 202–208 (2012).
Hergenrother, C. W. et al. The operational environment and rotational acceleration of asteroid (101955) Bennu from OSIRIS-REx observations. Nat. Commun. 10, 1291 (2019).
Collins, K. A., Kielkopf, J. F., Stassun, K. G. & Hessman, F. V. AstroImageJ: image processing and photometric extraction for ultra-precise astronomical light curves. Astron. J. 153, 77 (2017).
Kervella, P., Thévenin, F., Di Folco, E. & Ségransan, D. The angular sizes of dwarf stars and subgiants. Surface brightness relations calibrated by interferometry. Astron. Astrophys. 426, 297–307 (2004).
Gregory, P. Bayesian Logical Data Analysis for the Physical Sciences: A Comparative Approach with Mathematica® Support Cambridge Univ. Press (2005).
Foreman-Mackey, D., Hogg, D. W., Lang, D. & Goodman, J. emcee : the MCMC hammer. Publ. Astron. Soc. Pac. 125, 306–312 (2013).
Goodman, J. & Weare, J. Ensemble samplers with affine invariance. Commun. Appl. Math. Comput. Sci. 5, 65–80 (2010).
Willmer, C. N. A. The absolute magnitude of the Sun in several filters. Astrophys. J. Suppl. Ser. 236, 47 (2018).
Cepa, J. et al. in Optical and IR Telescope Instrumentation and Detectors (eds Iye, M. & Moorwood, A. F.) 623–631 (Society of Photo-Optical Instrumentation Engineers, 2000).
Riello, M. et al. Gaia Early Data Release 3: photometric content and validation. Astron. Astrophys. 649, A3 (2021).
Gomes-Júnior, A. R., Santana, T., Winter, O. C. & Sfair, R. The main perturbing objects on the orbits of (616) Prometheus and (617) Pandora. Mon. Not. R. Astron. Soc. 511, 4842–4849 (2022).
Lainey, V., Duriez, L. & Vienne, A. New accurate ephemerides for the Galilean satellites of Jupiter. I. Numerical integration of elaborated equations of motion. Astron. Astrophys. 420, 1171–1183 (2004).
Lainey, V., Arlot, J. E. & Vienne, A. New accurate ephemerides for the Galilean satellites of Jupiter. II. Fitting the observations. Astron. Astrophys. 427, 371–376 (2004).
Desmars, J., Bancelin, D., Hestroffer, D. & Thuillot, W. Statistical and numerical study of asteroid orbital uncertainty. Astron. Astrophys. 554, A32 (2013).