Hematite (α-Fe2O3) quantification in sedimentary magnetism: limitations of existing proxies and ways forward

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作者
Andrew P. Roberts
Xiang Zhao
David Heslop
Alexandra Abrajevitch
Yen-Hua Chen
Pengxiang Hu
Zhaoxia Jiang
Qingsong Liu
Brad J. Pillans
机构
[1] Australian National University,Research School of Earth Sciences
[2] Ehime University,Department of Earth Sciences
[3] Russian Academy of Sciences,Institute of Tectonics and Geophysics
[4] National Cheng Kung University,Department of Earth Sciences
[5] Ocean University of China,Key Laboratory of Submarine Geosciences and Prospecting Techniques, Ministry of Education, and College of Marine Geosciences
[6] Southern University of Science and Technology,Centre for Marine Magnetism, Department of Ocean Science and Engineering
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Hematite; Magnetism; Quantification; HIRM; -ratio; -ratio;
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摘要
Determination of hematite contributions to sedimentary magnetizations is an important but difficult task in quantitative environmental studies. The poorly crystalline and fine-grained nature of hematite nanoparticles makes quantification of their concentrations in natural environments challenging using mineralogical and spectroscopic methods, while the weak magnetization of hematite and often significant superparamagnetic nanoparticle concentrations make quantification difficult using magnetic remanence measurements. We demonstrate here that much-used magnetic parameters, such as the S-ratio and ‘hard’ isothermal remanent magnetization (HIRM), tend to significantly underestimate relative and absolute hematite contents, respectively. Unmixing of isothermal remanent magnetization (IRM) acquisition curves is among the more suitable approaches for defining magnetic mineral contributions, although it has under-appreciated uncertainties that limit hematite quantification. Diffuse reflectance spectroscopy and other methods can enable relative hematite and goethite content quantification under some conditions. Combined use of magnetic, mineralogical, and spectroscopic approaches provides valuable cross-checks on estimated hematite contents; such an integrated approach is recommended here. Further work is also needed to rise to the challenge of developing improved methods for hematite quantification.
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