Experimental and DFT study of the sulfidation of smithsonite: Impact of water and oxygen
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[1] L. Ou,et al. Hydration mechanisms of smithsonite from DFT-D calculations and MD simulations , 2022, International Journal of Mining Science and Technology.
[2] L. Ou,et al. Effects of defects and impurities on the adsorption of H2O on smithsonite (101) surfaces: Insight from DFT-D and MD , 2021 .
[3] Wei Sun,et al. Induced adsorption of pectin on copper-ion-modified galena surfaces: Flotation and adsorption mechanism , 2021, Minerals Engineering.
[4] L. Ou,et al. A DFT study of the Pb ion adsorption on smithsonite (1 0 1) surface in aqueous system , 2021, Journal of Molecular Liquids.
[5] S. Wen,et al. Identification of copper-sulfide species on the cuprite surface and its role in sulfidization flotation , 2021 .
[6] Jianhua Chen,et al. The interaction of flotation reagents with metal ions in mineral surfaces: A perspective from coordination chemistry , 2021 .
[7] Yubiao Li,et al. New insight into the anisotropic property and wettability of molybdenite: A DFT study , 2021, Minerals Engineering.
[8] L. Ou,et al. DFT insights into the sulfidation mechanism of Fe-impurity smithsonite , 2021, Minerals Engineering.
[9] Weiran Zuo,et al. Strengthening of sulfidization flotation of hemimorphite via fluorine ion modification , 2021 .
[10] Guiqing Liu,et al. Density functional theory study on electronic structure of tetrahedrite and effect of natural impurities on its flotation property , 2021 .
[11] Xiaolin Zhang,et al. Effects of heating-sulfidation on the formation of zinc sulfide species on smithsonite surfaces and its response to flotation , 2021 .
[12] Cheng-Hwa Liu,et al. Utilization of polyepoxysuccinic acid as a green depressant for the flotation separation of smithsonite from calcite , 2021, Minerals Engineering.
[13] P. Ngoepe,et al. Unravelling the performance of oxycarbonyl-thiocarbamate collectors on chalcopyrite using first-principles calculations and micro-flotation recoveries , 2021 .
[14] Zhengjun Zhang,et al. The effect of surface vacancy on adsorption of HS on smithsonite (1 0 1) surface: A DFT study , 2021 .
[15] T. Qiu,et al. Adsorption of hydrated [Y(OH)2]+ on kaolinite (001) surface: Insight from DFT simulation , 2021, Powder Technology.
[16] S. Wen,et al. Activation mechanism of lead ions in the flotation of sulfidized azurite with xanthate as collector , 2021 .
[17] S. Wen,et al. Modification of malachite surfaces with lead ions and its contribution to the sulfidization flotation , 2021, Applied Surface Science.
[18] Yong Zeng,et al. Depression mechanism of environment-friendly depressant dithiocarbamate chitosan in flotation separation of Cu-Zn sulfide , 2021 .
[19] S. Wen,et al. Adsorption characteristics of Pb(II) species on the sulfidized malachite surface and its response to flotation , 2021 .
[20] Liang Zhao,et al. Adsorption of Mg2+ and K+ on the kaolinite (0 0 1) surface in aqueous system: A combined DFT and AIMD study with an experimental verification , 2021 .
[21] Li Yuqiong,et al. Interactions of xanthate molecule with different mineral surfaces: A comparative study of Fe, Pb and Zn sulfide and oxide minerals with coordination chemistry , 2020 .
[22] S. Lebègue,et al. Adsorption mechanisms of fatty acids on fluorite unraveled by infrared spectroscopy and first-principles calculations. , 2020, Journal of colloid and interface science.
[23] Yunfeng Shi,et al. Activating hemimorphite using a sulfidation-flotation process with sodium sulfosalicylate as the complexing agent , 2020 .
[24] Yue-hua Hu,et al. Computational insights into the adsorption mechanism of gallic acid-bearing reagents on calcium-bearing mineral surfaces , 2020 .
[25] Zhicheng Liu,et al. Sulfidization mechanism in malachite flotation: A heterogeneous solid-liquid reaction that yields CuxSy phases grown on malachite , 2020 .
[26] Zhicheng Liu,et al. Improved understanding of the sulfidization mechanism in cerussite flotation: An XPS, ToF-SIMS and FESEM investigation , 2020 .
[27] Yu Wang,et al. Effect of ammonium salt on the stability of surface sulfide layer of smithsonite and its flotation performance , 2020 .
[28] Guo-fan Zhang,et al. Flotation separation of smithsonite from calcite using depressant sodium alginate and mixed cationic/anionic collectors , 2020 .
[29] Meng Liu,et al. Interaction between smithsonite and carboxyl collectors with different molecular structure in the presence of water: A theoretical and experimental study , 2020 .
[30] S. Wen,et al. Ammonium chloride catalyze sulfidation mechanism of smithsonite surface: Visual MINTEQ models, ToF-SIMS and DFT studies , 2020 .
[31] Guo-fan Zhang,et al. Flotation separation of smithsonite from calcite using a new depressant fenugreek gum , 2019 .
[32] Renman Ruan,et al. Correlation of surface oxidation with xanthate adsorption and pyrite flotation , 2019, Applied Surface Science.
[33] Guo-fan Zhang,et al. Effect of depressants in the selective flotation of smithsonite and calcite using cationic collector , 2019 .
[34] S. Wen,et al. Depression of pyrite in a low-alkaline medium with added calcium hypochlorite: Experiment, visual MINTEQ models, XPS, and ToF–SIMS studies , 2019, Minerals Engineering.
[35] Xu,et al. Novel Insights into the Hydroxylation Behaviors of α-Quartz (101) Surface and its Effects on the Adsorption of Sodium Oleate , 2019, Minerals.
[36] Shuiguang Tong,et al. Decomposition of flotation reagents in solutions containing metal ions. Part I: Gaseous compounds from xanthate decomposition , 2019, Minerals Engineering.
[37] Lixia Li,et al. AFM and DFT study of depression of hematite in oleate-starch-hematite flotation system , 2019, Applied Surface Science.
[38] S. Wen,et al. DFT insights into the electronic properties and adsorption mechanism of HS− on smithsonite (1 0 1) surface , 2019, Minerals Engineering.
[39] Yu Wang,et al. DFT study the adsorption of ethyl xanthate on the S-site of Cu-activated sphalerite (1 1 0) surface in the presence of water molecule , 2019, Results in Physics.
[40] Shaoxian Song,et al. Flotation separation of smithsonite from quartz using calcium lignosulphonate as a depressant and sodium oleate as a collector , 2019, Minerals Engineering.
[41] L. Benning,et al. The interfacial reactivity of arsenic species with green rust sulfate (GRSO4). , 2019, The Science of the total environment.
[42] K. Waters,et al. Flotation behavior and electronic simulations of rare earth minerals in the presence of dolomite supernatant using sodium oleate collector , 2019, Journal of Rare Earths.
[43] Tingting Li,et al. Density Functional Theory Study on the Surface Properties and Floatability of Hemimorphite and Smithsonite , 2018, Minerals.
[44] Yuqiong Li,et al. A density functional based tight binding (DFTB+) study on the sulfidization-amine flotation mechanism of smithsonite , 2018, Applied Surface Science.
[45] Yu Wang,et al. DFT study of SDD and BX adsorption on sphalerite (1 1 0) surface in the absence and presence of water molecules , 2018 .
[46] S. Wen,et al. Promoting sulfidation of smithsonite by zinc sulfide species increase with addition of ammonium chloride and its effect on flotation performance , 2018, Minerals Engineering.
[47] B. Johnson,et al. The effect of superstructure on the zeta potential, xanthate adsorption, and flotation response of pyrrhotite , 2018, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[48] X. Tong,et al. DFT study on the interaction between S 2 and zincite(101¯0)surface , 2018, Journal of the Taiwan Institute of Chemical Engineers.
[49] Xianhai Li,et al. Effects of structure of fatty acid collectors on the adsorption of fluorapatite (0 0 1) surface: A first-principles calculations , 2018, Applied Surface Science.
[50] Yu Wang,et al. Ab initio molecule dynamic simulation of Cu(OH)2 interaction with sphalerite (1 1 0) surface , 2018, Minerals Engineering.
[51] S. Wen,et al. Ammonia modification for enhancing adsorption of sulfide species onto malachite surfaces and implications for flotation , 2018 .
[52] Q. Feng,et al. Effect of depressants in the selective flotation of smithsonite and calcite using potassium lauryl phosphate as collector , 2018 .
[53] Hao Duan,et al. The adsorption mechanism of calcium ion on quartz (101) surface: A DFT study , 2018 .
[54] S. Wen,et al. Surface modification of malachite with ethanediamine and its effect on sulfidization flotation , 2018 .
[55] Jiushuai Deng,et al. Combined DFT and XPS investigation of enhanced adsorption of sulfide species onto cerussite by surface modification with chloride , 2017 .
[56] Fu Xiangyu,et al. Characterization of zinc sulfide species on smithsonite surfaces during sulfidation processing: Effect of ammonia liquor , 2017 .
[57] Weiran Zuo,et al. Adsorption of Fe(III) on smithsonite surfaces and implications for flotation , 2017 .
[58] Wenhui Ma,et al. Contribution of ammonium ions to sulfidation-flotation of smithsonite , 2017 .
[59] S. Wen,et al. Formation of zinc sulfide species on smithsonite surfaces and its response to flotation performance , 2017 .
[60] T. Qiu,et al. Density functional theory and experimental studies of Cu2+ activation on a cyanide-leached sphalerite surface , 2017 .
[61] F. Larachi,et al. Hydroxamic acid interactions with solvated cerium hydroxides in the flotation of monazite and bastnäsite—Experiments and DFT study , 2016 .
[62] F. Min,et al. A periodic DFT study of adsorption of water on sodium-montmorillonite (001) basal and (010) edge surface , 2016 .
[63] Jianhua Chen,et al. Adsorption of ethyl xanthate on ZnS(110) surface in the presence of water molecules: A DFT study , 2016 .
[64] Yuqiong Li,et al. DFT study on the galvanic interaction between pyrite (100) and galena (100) surfaces , 2016 .
[65] Jiushuai Deng,et al. Study on the sulfidation behavior of smithsonite , 2015 .
[66] Yuqiong Li,et al. Electronic structure and flotation behavior of complex mineral jamesonite , 2015 .
[67] Jiushuai Deng,et al. DFT study of ethyl xanthate interaction with sphalerite (1 1 0) surface in the absence and presence of copper , 2014 .
[68] Jianhua Chen,et al. Comparison of Multilayer Water Adsorption on the Hydrophobic Galena (PbS) and Hydrophilic Pyrite (FeS2) Surfaces: A DFT Study , 2014 .
[69] Jin Guo,et al. Study of H2O adsorption on sulfides surfaces and thermokinetic analysis , 2014 .
[70] Yuqiong Li,et al. Interactions of xanthate with pyrite and galena surfaces in the presence and absence of oxygen , 2014 .
[71] Q. Feng,et al. Effect of solution chemistry on the flotation system of smithsonite and calcite , 2013 .
[72] Guangtong Xu,et al. Investigation on the sulfur state and phase transformation of spent and regenerated S zorb sorbents using XPS and XRD , 2013 .
[73] Q. Feng,et al. Electrokinetic properties of smithsonite and its floatability with anionic collector , 2012 .
[74] Yuqiong Li,et al. Depression of pyrite in alkaline medium and its subsequent activation by copper , 2012 .
[75] Yuqiong Li,et al. DFT study of influences of As, Co and Ni impurities on pyrite (1 0 0) surface oxidation by O2 molecule , 2011 .
[76] Yuqiong Li,et al. Density functional theory study of influence of impurity on electronic properties and reactivity of pyrite , 2011 .
[77] Jin Guo,et al. A DFT study on the effect of lattice impurities on the electronic structures and floatability of sphalerite , 2010 .
[78] Jianhua Chen,et al. The first-principle study of the effect of lattice impurity on adsorption of CN on sphalerite surface , 2010 .
[79] Jianhua Chen,et al. A first-principle study of the effect of vacancy defects and impurities on the adsorption of O2 on sphalerite surfaces , 2010 .
[80] Wei Sun,et al. Electrodeposition of dixanthogen(TETD) on pyrite surface , 2007 .
[81] W. Yen,et al. Surface potential and dixanthogen stability on chalcopyrite surface , 2005 .
[82] M. Yekeler,et al. Molecular modeling study on the relative stabilities of the flotation products for arsenic-containing minerals: dixanthogens and arsenic(III) xanthates. , 2005, Journal of colloid and interface science.
[83] D. Fuerstenau,et al. Effect of sodium sulfide additions on the pulp potential and amyl xanthate flotation of cerussite and galena , 1999 .
[84] J. Lekki,et al. Flotometric investigation of hydrophobic sulphide-diethyl dixanthogen systems , 1991 .
[85] R. Woods,et al. The surface composition of natural sphalerites under oxidative leaching conditions , 1989 .
[86] J. A. Kittrick,et al. Solubility and surface spectroscopy of zinc precipitates on calcite , 1989 .
[87] G. Scott,et al. Mechanisms of antioxidant action: effect of processing conditions on the stabilizing effectiveness of metal xanthates and related dixanthogen in polypropylene , 1984 .
[88] M. H. Jones,et al. Decomposition of alkyl dixanthogens in aqueous solutions , 1983 .
[89] R. Honeyman,et al. Separation of dixanthogen and sulphur xanthates by H.P.L.C. , 1980 .