NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Back to Results
Synthesis and Characterization of Fe(III)-Fe(II)- Mg- Al Smectite Solid Solutions and Implications for Planetary ScienceThis study demonstrates the synergies and limits of multiple measurement types for the detection of smectite chemistry and oxidation state on planetary surfaces to infer past geochemical conditions. Smectite clay minerals are common products of water-rock interactions throughout the solar system, and their detection and characterization provides important clues about geochemical conditions and past environments if sufficient information about their composition can be discerned. Here, we synthesize and report on the spectroscopic properties of a suite of smectite samples that span the intermediate compositional range between Fe(II), Fe(III), Mg, and Al end-member species using bulk chemical analyses, X-ray diffraction, Vis/IR reflectance spectroscopy, UV and green-laser Raman spectroscopy, and Mössbauer spectroscopy. Our data show that smectite composition and the oxidation state of octahedral Fe can be reliably identified in the near infrared on the basis of combination and fundamental metal-OH stretching modes between 2.1–2.9 μm, which vary systematically with chemistry. Smectites dominated by Mg or Fe(III) have spectrally distinct fundamental and combination stretches, whereas Al-rich and Fe(II)-rich smectites have similar fundamental minima near 2.76 μm, but have distinct combination M-OH features between 2.24 and 2.36 μm. We show that with expanded spectral libraries that include intermediate composition smectites and both Fe(III) and Fe(II) oxidation states, more refined characterization of smectites from MIR data is now possible, as the position of the 450 cm–1 absorption shifts systematically with octahedral Fe content, although detailed analysis is best accomplished in concert with other characterization methods. Our data also provide the first Raman spectral libraries of smectite clays as a function of chemistry, and we demonstrate that Raman spectroscopy at multiple excitation wavelengths can qualitatively distinguish smectite clays of different structures and can enhance interpretation by other types of analyses. Our sample set demonstrates how X-ray diffraction can distinguish between dioctahedral and trioctahedral smectites using either the (02,11) or (06,33) peaks, but auxiliary information about chemistry and oxidation state aids in specific identifications. Finally, the temperature-dependent isomer shift and quadrupole splitting in Mössbauer data are insensitive to changes in Fe content but reliability differentiates Fe within the smectite mineral structure.
Document ID
20220005517
Acquisition Source
2230 Support
Document Type
Accepted Manuscript (Version with final changes)
Authors
Valerie K Fox
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Robert J Kupper
(Washington University in St. Louis St Louis, Missouri, United States)
Bethany L Ehlmann
(California Institute of Technology Pasadena, California, United States)
Jeffrey G Catalano
(Washington University in St. Louis St Louis, Missouri, United States)
Joseph Razzell-Hollis
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
William J Abbey
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Dirk J Schild
(California Institute of Technology Pasadena, California, United States)
Ryan D Nickerson
(Washington University in St. Louis St Louis, Missouri, United States)
Jonas C Peters
(California Institute of Technology Pasadena, California, United States)
Sydney M Katz
(Washington University in St. Louis St Louis, Missouri, United States)
Andrew A White
(Washington University in St. Louis St Louis, Missouri, United States)
Date Acquired
April 8, 2022
Publication Date
June 1, 2021
Publication Information
Publication: American Mineralogist
Publisher: GeoScienceWorld
Volume: 106
Issue: 6
Issue Publication Date: June 1, 2021
ISSN: 0003-004X
e-ISSN: 1945-3027
Subject Category
Lunar And Planetary Science And Exploration
Funding Number(s)
CONTRACT_GRANT: 80NSSC18K1292
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
Technical Review
No Preview Available