Literature DB >> 32801388

Smectite formation in the presence of sulfuric acid: Implications for acidic smectite formation on early Mars.

T S Peretyazhko1, P B Niles2, B Sutter1, R V Morris2, D G Agresti3, L Le1, D W Ming2.   

Abstract

The excess of orbital detection of smectite deposits compared to carbonate deposits on the martian surface presents an enigma because smectite and carbonate formations are both favored alteration products of basalt under neutral to alkaline conditions. We propose that Mars experienced acidic events caused by sulfuric acid (H2SO4) that permitted phyllosilicate, but inhibited carbonate, formation. To experimentally verify this hypothesis, we report the first synthesis of smectite from Mars-analogue glass-rich basalt simulant (66 wt% glass, 32 wt% olivine, 2 wt% chromite) in the presence of H2SO4 under hydrothermal conditions (~200 °C). Smectites were analyzed by X-ray diffraction, Mossbauer spectroscopy, visible and near-infrared reflectance spectroscopy and electron microprobe to characterize mineralogy and chemical composition. Solution chemistry was determined by Inductively Coupled Plasma Mass Spectrometry. Basalt simulant suspensions in 11-42 mM H2SO4 were acidic with pH ≤ 2 at the beginning of incubation and varied from acidic (pH 1.8) to mildly alkaline (pH 8.4) at the end of incubation. Alteration of glass phase during reaction of the basalt simulant with H2SO4 led to formation of the dioctahedral smectite at final pH ~3 and trioctahedral smectite saponite at final pH ~4 and higher. Anhydrite and hematite formed in the final pH range from 1.8 to 8.4 while natroalunite was detected at pH 1.8. Hematite was precipitated as a result of oxidative dissolution of olivine present in Adirondack basalt simulant. Formation of secondary phases, including smectite, resulted in release of variable amounts of Si, Mg, Na and Ca while solubilization of Al and Fe was low. Comparison of mineralogical and solution chemistry data indicated that the type of smectite (i.e., dioctahedral vs trioctahedral) was likely controlled by Mg leaching from altering basalt and substantial Mg loss created favorable conditions for formation of dioctahedral smectite. We present a model for global-scale smectite formation on Mars via acid-sulfate conditions created by the volcanic outgassing of SO2 in the Noachian and early Hesperian.

Entities:  

Year:  2017        PMID: 32801388      PMCID: PMC7427815          DOI: 10.1016/j.gca.2017.10.004

Source DB:  PubMed          Journal:  Geochim Cosmochim Acta        ISSN: 0016-7037            Impact factor:   5.010


  15 in total

Review 1.  New perspectives on ancient Mars.

Authors:  Sean C Solomon; Oded Aharonson; Jonathan M Aurnou; W Bruce Banerdt; Michael H Carr; Andrew J Dombard; Herbert V Frey; Matthew P Golombek; Steven A Hauck; James W Head; Bruce M Jakosky; Catherine L Johnson; Patrick J McGovern; Gregory A Neumann; Roger J Phillips; David E Smith; Maria T Zuber
Journal:  Science       Date:  2005-02-25       Impact factor: 47.728

2.  Magma generation on Mars: amounts, rates, and comparisons with Earth, moon, and venus.

Authors:  R Greeley; B D Schneid
Journal:  Science       Date:  1991-11-15       Impact factor: 47.728

3.  Identification of carbonate-rich outcrops on Mars by the Spirit rover.

Authors:  Richard V Morris; Steven W Ruff; Ralf Gellert; Douglas W Ming; Raymond E Arvidson; Benton C Clark; D C Golden; Kirsten Siebach; Göstar Klingelhöfer; Christian Schröder; Iris Fleischer; Albert S Yen; Steven W Squyres
Journal:  Science       Date:  2010-06-03       Impact factor: 47.728

4.  The origin and implications of clay minerals from Yellowknife Bay, Gale crater, Mars.

Authors:  Thomas F Bristow; David L Bish; David T Vaniman; Richard V Morris; David F Blake; John P Grotzinger; Elizabeth B Rampe; Joy A Crisp; Cherie N Achilles; Doug W Ming; Bethany L Ehlmann; Penelope L King; John C Bridges; Jennifer L Eigenbrode; Dawn Y Sumner; Steve J Chipera; John Michael Moorokian; Allan H Treiman; Shaunna M Morrison; Robert T Downs; Jack D Farmer; David Des Marais; Philippe Sarrazin; Melissa M Floyd; Michael A Mischna; Amy C McAdam
Journal:  Am Mineral       Date:  2015-04-01       Impact factor: 3.003

5.  Phyllosilicates on Mars and implications for early martian climate.

Authors:  F Poulet; J-P Bibring; J F Mustard; A Gendrin; N Mangold; Y Langevin; R E Arvidson; B Gondet; C Gomez; M Berthé; S Erard; O Forni; N Manaud; G Poulleau; A Soufflot; M Combes; P Drossart; T Encrenaz; T Fouchet; R Melchiorri; G Bellucci; F Altieri; V Formisano; S Fonti; F Capaccioni; P Cerroni; A Coradini; O Korablev; V Kottsov; N Ignatiev; D Titov; L Zasova; P Pinet; B Schmitt; C Sotin; E Hauber; H Hoffmann; R Jaumann; U Keller; F Forget
Journal:  Nature       Date:  2005-12-01       Impact factor: 49.962

6.  Mineralogy of a mudstone at Yellowknife Bay, Gale crater, Mars.

Authors:  D T Vaniman; D L Bish; D W Ming; T F Bristow; R V Morris; D F Blake; S J Chipera; S M Morrison; A H Treiman; E B Rampe; M Rice; C N Achilles; J P Grotzinger; S M McLennan; J Williams; J F Bell; H E Newsom; R T Downs; S Maurice; P Sarrazin; A S Yen; J M Morookian; J D Farmer; K Stack; R E Milliken; B L Ehlmann; D Y Sumner; G Berger; J A Crisp; J A Hurowitz; R Anderson; D J Des Marais; E M Stolper; K S Edgett; S Gupta; N Spanovich
Journal:  Science       Date:  2013-12-09       Impact factor: 47.728

7.  Near-infrared spectroscopic study of nontronites and ferruginous smectite.

Authors:  Ray L Frost; J Theo Kloprogge; Zhe Ding
Journal:  Spectrochim Acta A Mol Biomol Spectrosc       Date:  2002-06       Impact factor: 4.098

8.  Orbital identification of carbonate-bearing rocks on Mars.

Authors:  Bethany L Ehlmann; John F Mustard; Scott L Murchie; Francois Poulet; Janice L Bishop; Adrian J Brown; Wendy M Calvin; Roger N Clark; David J Des Marais; Ralph E Milliken; Leah H Roach; Ted L Roush; Gregg A Swayze; James J Wray
Journal:  Science       Date:  2008-12-19       Impact factor: 47.728

9.  A sulfur dioxide climate feedback on early Mars.

Authors:  Itay Halevy; Maria T Zuber; Daniel P Schrag
Journal:  Science       Date:  2007-12-21       Impact factor: 47.728

10.  Early geochemical environment of Mars as determined from thermodynamics of phyllosilicates.

Authors:  Vincent Chevrier; Francois Poulet; Jean-Pierre Bibring
Journal:  Nature       Date:  2007-07-05       Impact factor: 49.962

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