Dissolution, Solubility, and Stability of the Basic Ferric Sulfate-Arsenates [Fe(SO4)x(AsO4)y(OH)z·nH2O] at 25–45°C and pH 2–10
暂无分享,去创建一个
[1] V. Atuchin,et al. Negative thermal expansion in one-dimension of a new double sulfate AgHo(SO4)2 with isolated SO4 tetrahedra , 2021 .
[2] M. Gomez,et al. High-temperature study of basic ferric sulfate, FeOHSO4 , 2020, Physics and Chemistry of Minerals.
[3] O. Lahav,et al. Aquatic Chemistry , 2019 .
[4] Yinian Zhu,et al. Arsenic immobilization from aqueous solution by the precipitation of the pseudo-octahedral arsenate-substituted natroalunite solid solutions. , 2019, The Science of the total environment.
[5] Huaming Guo,et al. High arsenic groundwater in the Guide basin, northwestern China: Distribution and genesis mechanisms. , 2018, The Science of the total environment.
[6] J. Majzlan,et al. Thermodynamic properties of FeAsO4·0.75H2O - a more favorable disposable product of low As solubility , 2016 .
[7] Víctor H. Flores,et al. Kinetic modeling of the decomposition of beudantite in NaOH medium , 2016, Reaction Kinetics, Mechanisms and Catalysis.
[8] D. Paktunc. Phase Transformations In the System Fe–AsO4–SO4 and the Structure Of Amorphous Ferric Arsenate: Implications For Arsenic Stabilization In Mine Drainage and Industrial Effluents , 2015 .
[9] G. Demopoulos,et al. The nature of synthetic basic ferric arsenate sulfate (Fe(AsO4)1−x(SO4)x(OH)x) and basic ferric sulfate (FeOHSO4): their crystallographic, molecular and electronic structure with applications in the environment and energy , 2013 .
[10] M. Klementová,et al. Characterization of ferric arsenate-sulfate compounds: Implications for arsenic control in refractory gold processing residues , 2013 .
[11] G. Demopoulos,et al. Hydrothermal reaction chemistry and characterization of ferric arsenate phases precipitated from Fe2(SO4)3–As2O5–H2SO4 solutions , 2011 .
[12] S. Palmer,et al. The molecular structure of the mineral beudantite PbFe3(AsO4,SO4)2(OH)6 - Implications for arsenic accumulation and removal , 2011 .
[13] G. Demopoulos,et al. Vibrational spectroscopy study of hydrothermally produced scorodite (FeAsO4·2H2O), ferric arsenate sub‐hydrate (FAsH; FeAsO4·0.75H2O) and basic ferric arsenate sulfate (BFAS; Fe[(AsO4)1−x(SO4)x(OH)x]·wH2O) , 2009 .
[14] K. Hudson-Edwards,et al. RAMAN AND IR SPECTROSCOPIC STUDIES OF ALUNITE-SUPERGROUP COMPOUNDS CONTAINING Al, Cr3+, Fe3+ AND V3+ AT THE B SITE , 2009 .
[15] G. Demopoulos,et al. Coprecipitation of arsenate with iron(III) in aqueous sulfate media: effect of time, lime as base and co-ions on arsenic retention. , 2008, Water research.
[16] J. Jambor,et al. Characterization of the iron arsenate-sulphate compounds precipitated at elevated temperatures , 2007 .
[17] P. Krijgsman,et al. Hydrothermal precipitation of arsenic compounds in the ferric–arsenic (III)–sulfate system: thermodynamic modeling , 2003 .
[18] H. Bril,et al. Minerals controlling arsenic and lead solubility in an abandoned gold mine tailings. , 2000, The Science of the total environment.
[19] D. Nordstrom,et al. Thermodynamic Properties for Arsenic Minerals and Aqueous Species , 2014 .
[20] David L. Parkhurst,et al. Description of input and examples for PHREEQC version 3: a computer program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations , 2013 .
[21] W. Marsden. I and J , 2012 .
[22] Luigi Marini,et al. Prediction of the thermodynamic properties of metal–arsenate and metal–arsenite aqueous complexes to high temperatures and pressures and some geological consequences , 2007 .
[23] Iroon Polytechniou. Influence of cultivation temperature on the ligninolytic activity of selected fungal strains , 2006 .
[24] A. Monhemius,et al. Hydrothermal precipitation from aqueous solutions containing iron(III), arsenate and sulphate , 1994 .
[25] G. Demopoulos,et al. Acid Pressure Oxidation of Arsenopyrite: Part I, Reaction Chemistry , 1990 .
[26] J. J. Morgan,et al. Aquatic Chemistry: Chemical Equilibria and Rates in Natural Waters , 1970 .