Carr, MH & Head, JW Geological History of Mars. Planet Earth. science Lett. 294185–203 (2010).
Article ADS Google Scholar
Redmond, HL and King, SD A numerical study of a mantle plume beneath the Tharsis Rise: Reconciling dynamic uplift and lithospheric support models. J. Geophys. Nothing. planets 109E09008 (2004).
Article ADS Google Scholar
Tanaka, KL et al. Geological Map of Mars: US Geological Survey Scientific Research Map 3292, scale 1:20,000,000. US Geol. survive geol. research (2014); https://doi.org/10.3133/sim3292
Schumacher, S. & Breuer, D. An alternative mechanism for recent volcanism on Mars. geophysics Nothing. Lett. 34L14202 (2007).
Article ADS Google Scholar
Platz, T. & Michael, G. Eruption history of the Elysium Volcanic Province, Mars. Planet Earth. science Lett. 312140–151 (2011).
Article ADS Google Scholar
Nahm, AL and Schultz, RA Magnitude of global contraction on Mars from surface fault analysis: implications for Martian thermal history. Icarus 211389–400 (2011).
Article ADS Google Scholar
Andrews-Hanna, JC, Zuber, MT and Hauck, SA II Strike-slip faults on Mars: observations and implications for global tectonics and geodynamics. J. Geophys. Nothing. planets 113E08002 (2008).
Article ADS Google Scholar
Horvath, DG, Moitra, P., Hamilton, CW, Craddock, RA, and Andrews-Hanna, JC Evidence for geologically recent explosive volcanism on Elysium Planitia, Mars. Icarus 365114499 (2021).
Article Google Scholar
Giardini, D. et al. The seismicity of Mars. born geoscience 13205–212 (2020).
Article ADS Google Scholar
Voigt, JRC and Hamilton, CW Investigating the volcanic versus aqueous origin of surface deposits east of Elysium Planitia, Mars. Icarus 309389–410 (2018).
Article ADS Google Scholar
Moitra, P., Horvath, DG and Andrews-Hanna, JC Investigating the role of magmatic volatiles, ground ice and impact in a very explosive and very recent volcanic eruption on Mars. Planet Earth. science Lett. 567116986 (2021).
Article Google Scholar
Kedar, S. et al. Analyzing low-frequency seismic events in Cerberus Fossae as long-period volcanic earthquakes. J. Geophys. Nothing. planets 126e2020JE006518 (2021).
Article ADS Google Scholar
Brinkman, N. et al. First focal mechanisms of marsquakes. J. Geophys. Nothing. planets 126e2020JE006546 (2021).
Article ADS Google Scholar
Sun, W. & Tkalčić, H. Repetitive Marsquakes in the Martian upper mantle. born common 131695 (2022).
Article ADS Google Scholar
Manjón-Cabeza Córdoba, A. & Ballmer, MD The role of edge-driven convection in the generation of volcanism: part 1: a systematic 2D study. solid ground 12613–632 (2021).
Article ADS Google Scholar
Kiefer, WS and Li, Q. Water-undersaturated mantle plume volcanism on present-day Mars. meteorite planet science 511993–2010 (2016).
Article ADS Google Scholar
Escoles, JW & Montési, LGJ The generation of barriers to melt ascent in the Martian lithosphere. J. Geophys. Nothing. planets 12347–66 (2018).
Article ADS Google Scholar
Vaucher, J. et al. The Volcanic History of Central Elysium Planitia: Implications for Martian Magmatism. Icarus 204418–442 (2009).
Article ADS Google Scholar
Wieczorek, MA et al. InSight Constraints on the Global Character of the Martian Crust. J. Geophys. Nothing. planets 127e2022JE007298 (2022).
Article ADS Google Scholar
Robbins, SJ, Achille, GD and Hynek, BM The volcanic history of Mars: high-resolution crater-based studies of the calderas of 20 volcanoes. Icarus 2111179–1203 (2011).
Article ADS Google Scholar
Saunders, AD et al. Regional uplift associated with large continental igneous provinces: the roles of mantle plumes and lithosphere. Chem. geol. 241282–318 (2007).
Article ADS Google Scholar
Smrekar, SE Evidence for active hot spots on Venus from analysis of Magellanic gravity data. Icarus 1122–26 (1994).
Article ADS Google Scholar
White, RS & McKenzie, D. Mantle plumes and flood basalts. J. Geophys. Nothing. solid ground 10017543–17585 (1995).
Article Google Scholar
Broquet, A. & Wieczorek, MA The gravitational signature of Martian volcanoes. J. Geophys. Nothing. planets 1242054–2086 (2019).
Article ADS Google Scholar
Banerdt, WB Long-wavelength charge support on Venus and implications for internal structure. J. Geophys. Nothing. solid ground 91403–419 (1986).
Article Google Scholar
Andrews-Hanna, JC, Zuber, MT and Banerdt, WB The Borealis basin and the origin of the Martian crustal dichotomy. Nature 4531212–1215 (2008).
Article ADS Google Scholar
Broquet, A. Displacement_strain_planet: 0.4. Zenodo (2022).
Griffiths, RW and Campbell, IH Interaction of mantle plume heads with the Earth’s surface and initiation of small-scale convection. J. Geophys. Nothing. solid ground 9618295–18310 (1991).
Article Google Scholar
Kim D. et al. Improved constraints on planetary interiors with PP receiver functions. J. Geophys. Nothing. planets 126e2021JE006983 (2021)
Phillips, RJ, Sleep, NH and Banerdt, WB Permanent uplift in magmatic systems with application to the Tharsis region of Mars. J. Geophys. Nothing. solid ground 955089–5100 (1990).
Article Google Scholar
Knapmeyer, M. et al. Working models for the spatial distribution and level of seismicity on Mars. J. Geophys. Nothing. planets 111E11006 (2006).
Article ADS Google Scholar
Perrin, C. et al. Geometry and segmentation of Cerberus Fossae, Mars: implications for marsquake properties. J. Geophys. Nothing. planets 127e2021JE007118 (2022).
Article ADS Google Scholar
Hanna, JC & Phillips, RJ Tectonic pressurization of aquifers in the Mangala and Athabasca Valles Formation, Mart. J. Geophys. Nothing. planets 111E03003 (2006).
Article ADS Google Scholar
Bryan, SE and Ernst, RE Revised definition of large igneous provinces (LIPs). Earth Science. rev. 86175–202 (2008).
Article ADS Google Scholar
Boynton, WV et al. Concentration of H, Si, Cl, K, Fe and Th in the low- and mid-latitude regions of Mars. J. Geophys. Nothing. planets 112E12S99 (2007).
Article ADS Google Scholar
Baratoux, D., Toplis, MJ, Monnereau, M. & Gasnault, O. Thermal history of Mars inferred from orbital geochemistry of volcanic provinces. Nature 472338–341 (2011).
Article ADS Google Scholar
Hamilton, CW, Fagents, SA and Wilson, L. Explosive lava-water interactions at Elysium Planitia, Mars: geological and thermodynamic constraints on the formation of the Tartarus Colles cone clusters. J. Geophys. Nothing. planets 115E09006 (2010).
Article ADS Google Scholar
Fuller, ER & Head, JW Amazonis Planitia: the role of geologically recent volcanism and sedimentation in the formation of the milder plains of Mars. J. Geophys. Nothing. planets 1075081 (2002).
Article ADS Google Scholar
Campbell, B. et al. SHARAD radar survey of the Vastitas Borealis Formation in Amazonis Planitia. J. Geophys. Nothing. planets 113E12010 (2008).
Article ADS Google Scholar
Broquet, A. & Andrews-Hanna, JC Plume-induced flood basalts on Hesperian Mars: an investigation from Hesperia Planum. Icarus (2022).
Morschhauser, A., Grott, M. & Breuer, D. Crustal recycling, mantle dehydration and the thermal evolution of Mars. Icarus 212541–558 (2011).
Article ADS Google Scholar
Samuel, H., Lognonné, P., Panning, M. & Lainey, V. The rheology and thermal history of Mars revealed by the orbital evolution of Phobos. Nature 569523–527 (2019).
Article ADS Google Scholar
Plesa, A.-C. et al. The thermal state and interior structure of Mars. geophysics Nothing. Lett. 4512198–12209 (2018).
Article ADS Google Scholar
Khan, A. et al. Structure of Mars’ upper mantle from InSight seismic data. science 373434–438 (2021).
Article ADS Google Scholar
Broquet, A., Wieczorek, MA and Fa, W. Flexure of the lithosphere beneath the north polar cap of Mars: implications for ice composition and heat flow. geophysics Nothing. Lett. 47e2019GL086746…