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Fourier transform infrared spectroscopy study of acid birnessites before and after Pb2+ adsorption

Published online by Cambridge University Press:  09 July 2018

Wei Zhao
Affiliation:
Key Laboratory of Subtropical Agriculture and Environment, Ministry of Agriculture, Huazhong Agricultural University, Wuhan 430070, P.R.China State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Chinese Academy of Sciences and Ministry of Water Resources, No.26, Xinong Road, Yangling, Shaanxi 712100, P. R. China
Fan Liu
Affiliation:
Key Laboratory of Subtropical Agriculture and Environment, Ministry of Agriculture, Huazhong Agricultural University, Wuhan 430070, P.R.China
Xionghan Feng
Affiliation:
Key Laboratory of Subtropical Agriculture and Environment, Ministry of Agriculture, Huazhong Agricultural University, Wuhan 430070, P.R.China
Wenfeng Tan*
Affiliation:
Key Laboratory of Subtropical Agriculture and Environment, Ministry of Agriculture, Huazhong Agricultural University, Wuhan 430070, P.R.China State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Institute of Soil and Water Conservation, Chinese Academy of Sciences and Ministry of Water Resources, No.26, Xinong Road, Yangling, Shaanxi 712100, P. R. China
Guohong Qiu
Affiliation:
Key Laboratory of Subtropical Agriculture and Environment, Ministry of Agriculture, Huazhong Agricultural University, Wuhan 430070, P.R.China
Xiuhua Chen
Affiliation:
Key Laboratory of Subtropical Agriculture and Environment, Ministry of Agriculture, Huazhong Agricultural University, Wuhan 430070, P.R.China

Abstract

To provide fundamental knowledge for studying the relative content of vacant sites and exploring the mechanism of interaction between Pb2+ and birnessite, Fourier transform infrared spectroscopy (FTIR) of birnessites with different Mn average oxidation states (AOS) before and after Pb2+ adsorption were investigated. The number of absorption bands of FTIR spectra was determined by using the second derivatives of the original spectra. The band at 899–920 cm–1 was assigned to the bending vibration of -OH located at vacancies. The bands at 1059–1070, 1115–1124 and 1165–1171 cm–1 could be attributed to the vibrations of Mn(III)-OH in MnO6 layers, and the intensities of these bands increased with decreasing Mn AOS. The bands at 990 and 1023–1027 cm–1 were ascribed to the vibrations of Mn(III)-OH in the interlayers. Mn(III) in MnO6 layers partially migrated to interlayers during Pb2+ adsorption, which led to an increased intensity of the band at 990 cm–1. The band at 564–567cm–1 was assigned to the vibration of Mn-O located at vacancies. This band could split by coupling of vibrations due to Pb2+ and/or Mn2+ adsorbed at vacant sites. The large distance between the band at 610–626 cm–1 and that at 638–659 cm–1 might reflect small Mn(III) ions located in Mn(III)-rich rows.

Type
12th George Brown Lecture
Copyright
Copyright © The Mineralogical Society of Great Britain and Ireland 2012

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References

Appelo, C.A.J. & Postma, D. (1999) A consistent model for surface complexation on birnessite (-MnO2) and its application to a column experiment. Geochimica et Cosmochimica Acta, 63, 3039–3048.Google Scholar
Beckenkamp, K. & Lutz, H. D. (1992) Lattice vibration spectra Part LXXII. OH stretching frequencies of solid hydroxides – correlation with structural and bonding data. Journal of Molecular Structure, 270, 393–405.CrossRefGoogle Scholar
Besson, G. & Drits, V. A. (1997) Refined relationships between chemical composition of dioctahedral finegrained micaceous minerals and their infrared spectra within the OH stretching region; Part II, The main factors affecting OH vibrations and quantitative analysis. Clays and Clay Minerals, 45, 170–183.Google Scholar
Bishop, J., Madejova, J., Komadel, P. & Froschl, H. (2002) The influence of structural Fe, Al and Mg on the infrared OH bands in spectra of dioctahedral smectites. Clay Minerals, 37, 607–616.CrossRefGoogle Scholar
Burns, R.G. (1976) The uptake of cobalt into ferroman-ganese nodules, soils, and synthetic manganese (IV) oxides. Geochimica et Cosmochimica Acta, 40, 95–102.CrossRefGoogle Scholar
Chahi, A., Petit, S. & Decarreau, A. (2002) Infrared evidence of dioctahedral-trioctahedral site occupancy in palygorskite. Clays and Clay Minerals, 50, 306–313.CrossRefGoogle Scholar
Chen, C.C., Golden, D. C. & Dixon, J. B. (1986) Transformation of synthetic birnessite to cryptomelane: an electron microscopy study. Clays and Clay Minerals, 34, 511–520.CrossRefGoogle Scholar
Drits, V.A., Silvester, E., Gorshkov, A. I. & Manceau, A. (1997) Structure of synthetic monoclinic Na-rich birnessite and hexagonal birnessite; I, Results from X-ray diffraction and selected-area electron diffraction. American Mineralogist, 82, 946–961.CrossRefGoogle Scholar
Drits, V.A., Lanson, B., Bougerol-Chaillout, C., Gorshkov, A. I. & Manceau, A. (2002) Structure of heavy-metal sorbed birnessite: Part 2 Results from electron diffraction. American Mineralogist, 87, 1646–1661.CrossRefGoogle Scholar
Feng, X.H., Liu, F., Tan, W. F. & Liu, X. W. (2004) Synthesis of birnessite from the oxidation of Mn2+ by O2 in alkali medium: Effects of synthesis conditions. Clays and Clay Minerals, 52, 240–250.CrossRefGoogle Scholar
Feng, X.H., Zhai, L.M., Tan, W.F., Liu, F. & He, J. Z. (2007) Adsorption and redox reactions of heavy metals on synthesized Mn oxide minerals. Environmental Pollution, 147, 366–373.Google Scholar
Giovanoli, R. (1980) On natural and synthetic manganese nodules. Pp. 251–253 in: Geology and Geochemistry of Manganese, 1 (Varentsov, I.M. & Grasselly, G., editors). Budapest: Hungarian Academy of Science.Google Scholar
Golden, D.C., Chen, C. C. & Dixon, J. B. (1987) Transformation of birnessite to buserite, todorokite, and manganite under mild hydrothermal treatment. Clays and Clay Minerals, 35, 271–280.Google Scholar
Julien, C.M., Massot, M. & Poinsignon, C. (2004) Lattice vibrations of manganese oxides: Part I. Periodic structures. Spectrochimica Acta, Part A: Molecular and Biomolecular Spectroscopy, 60, 689–700.CrossRefGoogle ScholarPubMed
Kang, L., Zhang, M., Liu, Z.-H. & Ooi, K. (2007) IR spectra of manganese oxides with either layered or tunnel structures. Spectrochimica Acta, Part A: Molecular and Biomolecular Spectroscopy, 67, 864–869.Google Scholar
Kijima, N., Yasuda, H., Sato, T. & Yoshimura, Y. (2001) Preparation and characterization of open tunnel oxide [alpha]-MnO2 precipitated by ozone oxidation. Journal of Solid State Chemistry, 159, 94–102.Google Scholar
Kim, J.G., Dixon, J.B., Chusuei, C. C. & Deng, Y. (2002) Oxidation of chromium(III) to (VI) by manganese oxides. Soil Science Society of America Journal, 66, 306–315.CrossRefGoogle Scholar
Lanson, B., Drits, V.A., Silvester, E. & Manceau, A. (2000) Structure of H-exchanged hexagonal birnessite and its mechanism of formation from Na-rich monoclinic buserite at low pH. American Mineralogist, 85, 826–838.CrossRefGoogle Scholar
Lanson, B., Drits, V.A., Feng, Q. & Manceau, A. (2002) Structure of synthetic Na-birnessite: Evidence for a triclinic one-layer unit cell. American Mineralogist, 87, 1662–1671.Google Scholar
Luo, J. & Suib, S. L. (1997) Preparative parameters, magnesium effects, and anion effects in the crystallization of birnessites. Journal of Physical Chemistry B, 101, 10403–10413.Google Scholar
McKenzie, R.M. (1971) The synthesis of birnessite, cryptomelane, and some other oxides and hydroxides of manganese. Mineralogical Magzine, 38, 493–502.Google Scholar
McKenzie, R.M. (1980) The adsorption of lead and other heavy metals on oxides of manganese and iron. Australian Journal of Soil Research, 18, 61–73.Google Scholar
Maksić, Z.B. & Orville-Thomas, W.J. (1999) Pauling's Legacy: Modern Modelling of the Chemical Bond. Elsevier Science.Google Scholar
Manceau, A. & Charlet, L. (1992) X-ray absorption spectroscopic study of the sorption of Cr(III) at the oxide-water interface : I. Molecular mechanism of Cr(III) oxidation on Mn oxides. Journal of Colloid and Interface Science, 148, 425–442.CrossRefGoogle Scholar
Manceau, A., Drits, V.A., Silvester, E., Bartoli, C. & Lanson, B. (1997) Structural mechanism of Co (super 2+) oxidation by the phyllomanganate buserite. American Mineralogist, 82, 1150–1175.Google Scholar
Manceau, A., Lanson, B. & Drits, V. A. (2002) Structure of heavy metal sorbed birnessite. Part III: Results from powder and polarized extended X-ray absorption fine s truc t u re spe c t roscopy. Geochimica et Cosmochimica Acta, 66, 2639–2663.CrossRefGoogle Scholar
Martinez-Alonso, S., Rustad, J. R. & Goetz, A. F. H. (2002) Ab initio quantum mechanical modeling of infrared vibrational frequencies of the OH group in dioctahedral phyllosilicates. Part II: Main physical factors governing the OH vibrations. American Mineralogist, 87, 1224–1234.Google Scholar
Matocha, C.J., Elzinga, E. J. & Sparks, D. L. (2001) Reactivity of Pb(II) at the Mn(III,IV) (oxyhydr)-oxide-water interface. Environmental Science & Technology, 35, 2967–2972.Google Scholar
Peacock, C. L. & Sherman, D. M. (2007) Sorption of Ni by birnessite: Equilibrium controls on Ni in seawater. Chemical Geology, 238, 94–106.Google Scholar
Post, J.E. (1999) Manganese oxide minerals: Crystal structures and economic and environmental significance. Proceedings of the National Academy of Sciences (PNAS), 96, 3447–3454.Google Scholar
Potter, R. M. & Rossman, G. R. (1979) The tetravalent manganese oxides; identification, hydration, and structural relationships by infrared spectroscopy. American Mineralogist, 64, 1199–1218.Google Scholar
Shannon, R. (1976) Revised effective ionic radii and systematic studies of interatomic distances in halides and chalcogenides. Acta Crystallographica, Section A: Crystal Physics, Diffraction, Theoretical and General Crystallography, 32, 751–767.Google Scholar
Silvester, E., Manceau, A. & Drits, V. A. (1997) Structure of synthetic monoclinic Na-rich birnessite and hexagonal birnessite; II, Results from chemical studies and EXAFS spectroscopy. American Mineralogist, 82, 962–978.Google Scholar
Toner, B., Manceau, A., Webb, S. M. & Sposito, G. (2006) Zinc sorption to biogenic hexagonal-birnessite particles within a hydrated bacterial biofilm. Geochimica et Cosmochimica Acta, 70, 27–43.CrossRefGoogle Scholar
Tu, S., Racz, G. J. & Goh, T. B. (1994) Transformations of synthetic birnessite as affected by pH and manganese concentration. Clays and Clay Minerals, 42, 321–330.Google Scholar
Vantelon, D., Pelletier, M., Michot, L.J., Barres, O. & Thomas, F. (2001) Fe, Mg and Al distribution in the octahedral sheet of montmorillonites. An infrared study in the OH-bending region. Clay Minerals, 36, 369–379.Google Scholar
Villalobos, M., Toner, B., Bargar, J. & Sposito, G. (2003) Characterization of the manganese oxide produced by pseudomonas putida strain MnB1. Geochimica et Cosmochimica Acta, 67, 2649–2662.Google Scholar
Villalobos, M., Bargar, J. & Sposito, G. (2005) Mechanisms of Pb(II) sorption on a biogenic manganese oxide. Environmental Science & Technology, 39, 569–576.Google Scholar
Villalobos, M., Lanson, B., Manceau, A., Toner, B. & Sposito, G. (2006) Structural model for the biogenic Mn oxide produced by Pseudomonas putida. American Mineralogist, 91, 489–502.Google Scholar
Vivekanandan, K., Selvasekarapandian, S. & Kolandaivel, P. (1995) Raman and FT-IR studies of Pb4(NO3)2(PO4)2.2H2O crystals. Materials Chemistry and Physics, 39, 284–289.Google Scholar
Webb, S.M., Tebo, B. M. & Bargar, J. R. (2005) Structural characterization of biogenic Mn oxides produced in seawater by the marine bacillus sp. strain SG-1. American Mineralogist, 90, 1342–1357.Google Scholar
Yang, D. S. & Wang, M. K. (2002) Syntheses and characterization of birnessite by oxidizing pyrochroite in alkaline conditions. Clays and Clay Minerals, 50, 63–69.Google Scholar
Zhao, W., Cui, H.J., Feng, X.H., Tan, W. F. & Liu, F. (2009) Relationship between Pb2+ adsorption and average Mn oxidation state in synthetic birnessites. Clays and Clay Minerals, 57, 513–520.Google Scholar