Origin of the Differential Nanoscale Reactivity of Biologically and Chemically Formed Green Rust Crystals Investigated by Chemical Force Spectroscopy
暂无分享,去创建一个
Cédric Carteret | Pierre Schaaf | Marjorie Etique | Asfaw Zegeye | Grégory Francius | Christian Ruby
[1] T. Beveridge,et al. Minerals Associated with Biofilms Occurring on Exposed Rock in a Granitic Underground Research Laboratory , 1994, Applied and environmental microbiology.
[2] E. Roden,et al. IRON IN MICROBIAL METABOLISMS , 2011 .
[3] M. Schoonen,et al. The Structure of Ferrihydrite, a Nanocrystalline Material , 2007, Science.
[4] B D Ratner,et al. Direct measurement of hydrogen bonding in DNA nucleotide bases by atomic force microscopy. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[5] D. Canfield,et al. Green rust formation controls nutrient availability in a ferruginous water column , 2012 .
[6] C. Mustin,et al. Bacterial and iron oxide aggregates mediate secondary iron mineral formation: green rust versus magnetite , 2010, Geobiology.
[7] P. Refait,et al. Structure of the Fe(II-III) layered double hydroxysulphate green rust two from Rietveld analysis , 2003 .
[8] L. Legrand,et al. Electrochemical deposition of thin films of green rusts 1 and 2 on inert gold substrate , 2003 .
[9] M. Abdelmoula,et al. Oxidation modes and thermodynamics of FeII–III oxyhydroxycarbonate green rust: Dissolution–precipitation versus in situ deprotonation , 2010 .
[10] Janshoff,et al. Force Spectroscopy of Molecular Systems-Single Molecule Spectroscopy of Polymers and Biomolecules. , 2000, Angewandte Chemie.
[11] M. Abdelmoula,et al. Competitive Formation of Hydroxycarbonate Green Rust 1 versus Hydroxysulphate Green Rust 2 in Shewanella putrefaciens Cultures , 2004 .
[12] K. Konhauser,et al. Iron in Earth Surface Systems: A Major Player in Chemical and Biological Processes , 2011 .
[13] Vijay M. Naik,et al. Hydrogen bond thermodynamic properties of water from dielectric constant data , 2000 .
[14] S. D. De Keersmaecker,et al. Detection, localization, and conformational analysis of single polysaccharide molecules on live bacteria. , 2008, ACS nano.
[15] V. Belgiorno,et al. Heterotrophic/autotrophic denitrification (HAD) of drinking water: prospective use for permeable reactive barrier , 2007 .
[16] R. J. Williams,et al. Mg and Ca isotope fractionation during CaCO3 biomineralisation. , 2004, Biochemical and biophysical research communications.
[17] L. Legrand,et al. The oxidation of carbonate green rust into ferric phases :solid-state reaction or transformation via solution , 2004 .
[18] J. Lawrence,et al. Microbial exopolymers provide a mechanism for bioaccumulation of contaminants , 1994, Microbial Ecology.
[19] Philippe Dillmann,et al. Raman Studies of Corrosion Layers Formed on Archaeological Irons in Various Media , 2009 .
[20] R. Messina,et al. A Raman and infrared study of a new carbonate green rust obtained by electrochemical way , 2001 .
[21] P. Reimann,et al. Hidden multiple bond effects in dynamic force spectroscopy. , 2012, Biophysical journal.
[22] A. Nouri,et al. Morphology, nanomechanical and thermodynamic surface characteristics of nylon 6/feather keratin blend films: an atomic force microscopy investigation , 2012 .
[23] A. Kappler,et al. Green rust formation during Fe(II) oxidation by the nitrate-reducing Acidovorax sp. strain BoFeN1. , 2012, Environmental science & technology.
[24] G. Bourrié,et al. Identification of a green rust mineral in a reductomorphic soil by Mossbauer and Raman spectroscopies , 1997 .
[25] Yves F Dufrêne,et al. Chemical force microscopy of single live cells. , 2007, Nano letters.
[26] J. Banfield,et al. Microbial extracellular polysaccharides and plagioclase dissolution , 1999 .
[27] F. Fauth,et al. Formation and crystallographical structure of hydroxysulphate and hydroxycarbonate green rusts synthetised by coprecipitation , 2006 .
[28] M. Schoonen,et al. Structure and Charge Hopping Dynamics in Green Rust , 2007 .
[29] T. Camesano,et al. Heterogeneity in bacterial surface polysaccharides, probed on a single-molecule basis. , 2002, Biomacromolecules.
[30] Takashi Ito,et al. Chemical-force microscopy for materials characterization , 2010 .
[31] C. Koch,et al. Abiotic Nitrate Reduction to Ammonium: Key Role of Green Rust , 1996 .
[32] C. Ruby,et al. In situ redox flexibility of FeII-III Oxyhydroxycarbonate green rust and fougerite. , 2006, Environmental science & technology.
[33] Ying-Jie Zhu,et al. Loading-rate dependence of individual ligand-receptor bond-rupture forces studied by atomic force microscopy , 2001 .
[34] B. Logan,et al. Interactions of biopolymers with silica surfaces : Force measurements and electronic structure calculation studies , 2006 .
[35] J. A. Ohlhausen,et al. Measurement of elastic properties of calcium silicate hydrate with atomic force microscopy , 2012 .
[36] J. Ghanbaja,et al. Coprecipitation of Fe(II–III) hydroxycarbonate green rust stabilised by phosphate adsorption , 2004 .
[37] C. Ruby,et al. Oxidation and deprotonation of synthetic FeII–FeIII (oxy)hydroxycarbonate Green Rust: An X-ray photoelectron study , 2008 .
[38] M. Abdelmoula,et al. Formation of ‘ferric green rust’ and/or ferrihydrite by fast oxidation of iron(II–III) hydroxychloride green rust , 2003 .
[39] G. Widmalm,et al. Structural studies of the exopolysaccharide produced by Lactobacillus rhamnosus strain GG (ATCC 53103). , 2002, Biomacromolecules.
[40] S. Welch,et al. The effect of microbial glucose metabolism on bytownite feldspar dissolution rates between 5 and 35 C , 1999 .