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Ling, Florence T., Post, Jeffrey E., Heaney, Peter J., Ilton, Eugene S. (2018) The relationship between Mn oxidation state and structure in triclinic and hexagonal birnessites. Chemical Geology, 479. 216-227 doi:10.1016/j.chemgeo.2018.01.011

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Reference TypeJournal (article/letter/editorial)
TitleThe relationship between Mn oxidation state and structure in triclinic and hexagonal birnessites
JournalChemical Geology
AuthorsLing, Florence T.Author
Post, Jeffrey E.Author
Heaney, Peter J.Author
Ilton, Eugene S.Author
Year2018 (February)Volume479
Page(s)216-227
PublisherElsevier BV
DOIdoi:10.1016/j.chemgeo.2018.01.011Search in ResearchGate
Mindat Ref. ID299561Long-form Identifiermindat:1:5:299561:2
GUIDdb34b128-5635-4bb1-ae1b-49bfba92098b
Full ReferenceLing, Florence T., Post, Jeffrey E., Heaney, Peter J., Ilton, Eugene S. (2018) The relationship between Mn oxidation state and structure in triclinic and hexagonal birnessites. Chemical Geology, 479. 216-227 doi:10.1016/j.chemgeo.2018.01.011
Plain TextLing, Florence T., Post, Jeffrey E., Heaney, Peter J., Ilton, Eugene S. (2018) The relationship between Mn oxidation state and structure in triclinic and hexagonal birnessites. Chemical Geology, 479. 216-227 doi:10.1016/j.chemgeo.2018.01.011
In(2018) Chemical Geology Vol. 479. Elsevier BV

References Listed

These are the references the publisher has listed as being connected to the article. Please check the article itself for the full list of references which may differ. Not all references are currently linkable within the Digital Library.

Bargar (2009) Structural characterization of terrestrial microbial Mn oxides from Pinal Creek, AZ 73, 889
Not Yet Imported: Journal of Environmental Quality - journal-article : 10.2134/jeq1979.00472425000800010008x

If you would like this item imported into the Digital Library, please contact us quoting Journal ID 41680
Buerger (1960)
Not Yet Imported: Journal of Porous Materials - journal-article : 10.1007/s10934-010-9430-0

If you would like this item imported into the Digital Library, please contact us quoting Journal ID 46207
Drits (1997) Am. Mineral. Structure of synthetic monoclinic Na-rich birnessite and hexagonal birnessite: II. Results from chemical studies and EXAFS spectroscopy 82, 962
Feng (2010) Formation of nano-crystalline todorokite from biogenic Mn oxides 74, 3232
Fischer (2011)
Goldschmidt (1929) Crystal structure and crystal constitution , 253
Ilton (2016) XPS determination of Mn oxidation states in Mn (Hydr)oxides
Iyer (2012) J. Phys. Chem. Water oxidation catalysis using amorphous manganese oxides, octahedral molecular sieves (OMS-2), and octahedral layered (OL-1) manganese oxide structures 116, 6474
Jones (1956) The Mineral. Mag. Birnessite, a new manganese oxide mineral from Aberdeenshire, Scotland XXXI, 283
Kong (2017) Time-resolved synchotron x-ray scattering and chemical analysis of redox reactions between aqueous Cr(III) and triclinic Na-birnessite
Kwon (2012) Understanding the trends in transition metal sorption by vacancy sites in birnessite 101, 222
Learman (2011) Coupled biotic–abiotic Mn(II) oxidation pathway mediates the formation and structural evolution of biogenic Mn oxides 75, 6048
Ling (2015) Transformations from triclinic to hexagonal birnessite at circumneutral pH induced through pH control by common biological buffers 416, 1
Lingane (1987) Ind. Eng. Chem. New method for determination of manganese 18, 191
Manceau (1992) Am. Mineral. Structural chemistry of Mn, Fe, Co, and Ni in manganese hydrous oxides: part I. Information from XANES spectroscopy 77, 1133
McCann (2015) Remediation of a historically Pb contaminated soil using a model natural Mn oxide waste 138, 211
McKendry (2015)
Moore (1997) Chapter 5: individual clay minerals , 138
Not Yet Imported: Journal of Photochemistry and Photobiology B: Biology - journal-article : 10.1016/j.jphotobiol.2015.01.009

If you would like this item imported into the Digital Library, please contact us quoting Journal ID 45971
Parkhurst (2013) Description of input and examples for PHREEQC version 3–A computer program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations 497
Peña (2015) Copper sorption by the edge surfaces of synthetic birnessite nanoparticles 396, 196
Post (1990) Am. Mineral. Crystal structure determinations of synthetic sodium, magnesium, and postassium birnessite using TEM and the Rietveld Method 75, 477
Russell (2006) Geol. Soc. Am. Mem. The onset and early evolution of life 198, 1
Santelli (2011) Diversity of Mn oxides produced by Mn(II)-oxidizing fungi 75, 2762
Saratovsky (2009) The structure of manganese oxide formed by the fungus Acremonium sp. strain KR21-2 73, 3291
Sayers (1988)
Tan (2010) Characterization of mangaznese oxide precipitates from Appalachian coal mine drainage treatment systems 25, 389
Usui (1994) IX. Mineralogy, geochemistry and internal growth structure of manganese nodules in the western part of the Penrhyn Basin, South Pacific (GH83-3 area) 23, 165
Wang (2012) Sorption behavior of heavy metals on birnessite: relationship with its Mn average oxidation state and implications for types of sorption sites , 292
Not Yet Imported: Physica Scripta - journal-article : 10.1238/Physica.Topical.115a01011

If you would like this item imported into the Digital Library, please contact us quoting Journal ID 63434
Yin (2012) Characterization of Ni-rich hexagonal birnessite and its geochemical effects on aqueous Pb2+/Zn2+ and As(III) 93(Iii), 47
Zhao (2011) XAFS studies on surface coordination of Pb2+ on birnessites with different average oxidation states 379(1–3), 86
Zhao (2016) Environ. Sci. Technol. Redox reactions between Mn(II) and hexagonal birnessite change its layer symmetry , 1


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