Page last updated: 2024-08-26

goethite and lead

goethite has been researched along with lead in 24 studies

Research

Studies (24)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's9 (37.50)29.6817
2010's7 (29.17)24.3611
2020's8 (33.33)2.80

Authors

AuthorsStudies
Chen, CY; Lai, CH; Lee, CW; Wei, BL1
Leckie, JO; Trotz, MA; Villalobos, M1
Kraemer, SM; Raymond, KN; Sposito, G; Xu, J1
Brown, GE; Spormann, AM; Templeton, AS1
Ler, A; Stanforth, R1
Dubbin, WE; Kovács, E; Tamás, J1
Andrade, EM; Orsetti, S; Quiroga, Mde L1
Pérez-Gallegos, A; Villalobos, M1
Anand, S; Mohapatra, M; Rout, K1
Dohnalkova, A; Ginn, TR; Moberly, JG; Peyton, BM; Rastogi, G; Sani, RK; Shende, RV; Spycher, N1
Lo, IM; Tsang, DC; Yip, TC1
Koopal, LK; Shi, Z; Tan, W; Wang, M; Weng, L; Xiong, J; Zheng, L1
Dang, Z; Huang, W; Jiang, X; Tang, T; Wang, L; Yang, C1
Li, J; Li, M; Liu, H; Lu, X; Pan, C; Xiang, W; Zhang, L; Zhang, R1
Bai, J; Chao, Y; Chen, Y; Qiu, R; Wang, S1
Li, X; Lin, Q; Liu, Q; Tang, J; Xiao, R; Zhang, M; Zhou, Y1
Duc, HG; Hiroyoshi, N; Igarashi, T; Ito, M; Mondejar, AJS; Opiso, EM; Paglinawan, FC; Resabal, VJ; Silwamba, M; Tabelin, CB; Tomiyama, S; Villacorte-Tabelin, M1
Hou, J; Jin, J; Liang, Y; Tan, W; Wang, M; Xiong, J; Yu, D1
Bakhtiari, O; Hadadpour, S; Hossaini-Zahed, SS; Khanlari, S; Matsuyam, H; Mohammadi, T; Rajabzadeh, S; Tofighy, MA; Zhang, P1
Chen, Z; Lin, Q; Liu, Q; Luo, J; Tang, J1
Chen, Y; Fan, J; Ma, Q; Ma, R; Teng, W; Xue, Y; Yuan, S1
Fu, F; Peng, J; Tang, B; Zhang, L; Zhang, X1
Bidast, S; Golchin, A; Mohseni, A1
Abrahams, JR; Carranza, EJM1

Other Studies

24 other study(ies) available for goethite and lead

ArticleYear
Adsorptive characteristics of cadmium and lead on the goethite-coated sand surface.
    Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering, 2001, Volume: 36, Issue:5

    Topics: Adsorption; Cadmium; Iron Compounds; Lead; Minerals; Silicon Dioxide; Temperature; Water Supply

2001
Surface complexation modeling of carbonate effects on the adsorption of Cr(VI), Pb(II), and U(VI) on goethite.
    Environmental science & technology, 2001, Oct-01, Volume: 35, Issue:19

    Topics: Adsorption; Carbon Dioxide; Carbonates; Chromium; Hydrogen-Ion Concentration; Iron Compounds; Lead; Minerals; Models, Chemical; Soil Pollutants; Temperature; Uranium

2001
Adsorption of Pb(ll) and Eu(III) by oxide minerals in the presence of natural and synthetic hydroxamate siderophores.
    Environmental science & technology, 2002, Mar-15, Volume: 36, Issue:6

    Topics: Adsorption; Biological Availability; Chemical Precipitation; Environmental Pollutants; Europium; Hydrogen-Ion Concentration; Hydroxamic Acids; Iron Compounds; Lead; Metals; Minerals; Oxides; Siderophores; Trace Elements

2002
Speciation of Pb(II) sorbed by Burkholderia cepacia/goethite composites.
    Environmental science & technology, 2003, May-15, Volume: 37, Issue:10

    Topics: Adsorption; Burkholderia cepacia; Environmental Pollutants; Hydrogen-Ion Concentration; Iron Compounds; Lead; Microscopy, Electron; Minerals; Nitrates; Spectrum Analysis; X-Rays

2003
Evidence for surface precipitation of phosphate on goethite.
    Environmental science & technology, 2003, Jun-15, Volume: 37, Issue:12

    Topics: Adsorption; Chemical Precipitation; Iron; Iron Compounds; Kinetics; Lead; Minerals; Phosphates; Surface Properties

2003
Influence of hydrology on heavy metal speciation and mobility in a Pb-Zn mine tailing.
    Environmental pollution (Barking, Essex : 1987), 2006, Volume: 141, Issue:2

    Topics: Biological Availability; Cadmium; Calcium Carbonate; Copper; Electric Conductivity; Environmental Pollutants; Geologic Sediments; Hydrogen-Ion Concentration; Iron; Iron Compounds; Lead; Metals, Heavy; Minerals; Mining; Oxidation-Reduction; Particle Size; Solubility; Sulfides; Water; Zinc

2006
Binding of Pb(II) in the system humic acid/goethite at acidic pH.
    Chemosphere, 2006, Volume: 65, Issue:11

    Topics: Humic Substances; Hydrogen-Ion Concentration; Iron Compounds; Lead; Minerals; Spectrophotometry, Infrared; Spectrophotometry, Ultraviolet; Spectroscopy, Fourier Transform Infrared

2006
Goethite surface reactivity: a macroscopic investigation unifying proton, chromate, carbonate, and lead(II) adsorption.
    Journal of colloid and interface science, 2008, Oct-15, Volume: 326, Issue:2

    Topics: Adsorption; Carbonates; Cations, Divalent; Chromates; Hydrogen-Ion Concentration; Iron Compounds; Lead; Microscopy, Electron, Scanning; Minerals; Protons; Surface Properties

2008
Synthesis of Mg(II) doped goethite and its cation sorption behaviour.
    Journal of hazardous materials, 2009, Nov-15, Volume: 171, Issue:1-3

    Topics: Adsorption; Cadmium; Cations; Copper; Hydrogen-Ion Concentration; Iron; Iron Compounds; Kinetics; Lead; Magnesium; Metals; Microscopy, Electron, Transmission; Minerals; Time Factors; X-Ray Diffraction; Zinc

2009
The toxicity of lead to Desulfovibrio desulfuricans G20 in the presence of goethite and quartz.
    Journal of basic microbiology, 2010, Volume: 50, Issue:2

    Topics: Cytoplasm; Desulfovibrio desulfuricans; Iron; Iron Compounds; Lead; Microscopy, Electron, Transmission; Minerals; Periplasm; Quartz; Spectrometry, X-Ray Emission; Sulfides

2010
Interactions of chelating agents with Pb-goethite at the solid-liquid interface: Pb extraction and re-adsorption.
    Chemosphere, 2010, Volume: 81, Issue:3

    Topics: Adsorption; Chelating Agents; Edetic Acid; Environmental Restoration and Remediation; Iron Compounds; Lead; Minerals

2010
Effect of Soil Fulvic and Humic Acids on Pb Binding to the Goethite/Solution Interface: Ligand Charge Distribution Modeling and Speciation Distribution of Pb.
    Environmental science & technology, 2018, 02-06, Volume: 52, Issue:3

    Topics: Adsorption; Humic Substances; Hydrogen-Ion Concentration; Iron Compounds; Lead; Minerals; Soil

2018
Complexation of sulfamethazine with Cd(II) and Pb(II): implication for co-adsorption of SMT and Cd(II) on goethite.
    Environmental science and pollution research international, 2018, Volume: 25, Issue:12

    Topics: Adsorption; Cadmium; Coordination Complexes; Hydrogen-Ion Concentration; Iron Compounds; Lead; Minerals; Models, Theoretical; Soil Pollutants; Sulfamethazine; Surface Properties

2018
Structural Incorporation of Manganese into Goethite and Its Enhancement of Pb(II) Adsorption.
    Environmental science & technology, 2018, 04-17, Volume: 52, Issue:8

    Topics: Adsorption; Iron Compounds; Lead; Manganese; Minerals

2018
The effect of interaction between Bacillus subtilis DBM and soil minerals on Cu(II) and Pb(II) adsorption.
    Journal of environmental sciences (China), 2019, Volume: 78

    Topics: Bacillus subtilis; Copper; Iron Compounds; Lead; Minerals; Soil; Soil Pollutants

2019
Characterization of goethite-fulvic acid composites and their impact on the immobility of Pb/Cd in soil.
    Chemosphere, 2019, Volume: 222

    Topics: Benzopyrans; Cadmium; Iron Compounds; Lead; Minerals; Soil; Soil Pollutants; Surface Properties

2019
Solid-phase partitioning and release-retention mechanisms of copper, lead, zinc and arsenic in soils impacted by artisanal and small-scale gold mining (ASGM) activities.
    Chemosphere, 2020, Volume: 260

    Topics: Arsenic; Copper; Gold; Iron; Iron Compounds; Lead; Minerals; Mining; Philippines; Soil; Soil Pollutants; Sulfides; X-Ray Diffraction; Zinc

2020
Microstructure of Al-substituted goethite and its adsorption performance for Pb(II) and As(V).
    The Science of the total environment, 2021, Oct-10, Volume: 790

    Topics: Adsorption; Iron Compounds; Lead; Minerals

2021
Evaluation of process condition impact on copper and lead ions removal from water using goethite incorporated nanocomposite ultrafiltration adsorptive membranes.
    Water science and technology : a journal of the International Association on Water Pollution Research, 2022, Volume: 85, Issue:4

    Topics: Adsorption; Copper; Hydrogen-Ion Concentration; Ions; Iron Compounds; Lead; Minerals; Nanocomposites; Ultrafiltration; Water; Water Pollutants, Chemical

2022
Remediation of cadmium and lead contaminated soils using Fe-OM based materials.
    Chemosphere, 2022, Volume: 307, Issue:Pt 3

    Topics: Acid Rain; Cadmium; Environmental Restoration and Remediation; Ferric Compounds; Iron; Iron Compounds; Lead; Lignin; Metals, Heavy; Minerals; Oxides; Soil; Soil Pollutants

2022
Enhanced removal of heavy metals by α-FeOOH incorporated carboxylated cellulose nanocrystal: synergistic effect and removal mechanism.
    Environmental science and pollution research international, 2023, Volume: 30, Issue:7

    Topics: Adsorption; Cadmium; Cations; Cellulose; Lead; Metals, Heavy; Nanoparticles; Soil

2023
Enhanced immobility of Pb(II) during ferrihydrite-Pb(II) coprecipitates aging impacted by malic acid or phosphate.
    Environmental science and pollution research international, 2023, Volume: 30, Issue:16

    Topics: Ferric Compounds; Lead; Minerals; Oxidation-Reduction; Phosphates

2023
The beneficial effects of bare and CMC-supported α-FeOOH, Fe
    Environmental science and pollution research international, 2023, Volume: 30, Issue:32

    Topics: Cadmium; Carboxymethylcellulose Sodium; Lead; Nanoparticles; Oils, Volatile; Satureja; Soil; Soil Pollutants; Zinc

2023
Trace metal content prediction along an AMD (acid mine drainage)-contaminated stream draining a coal mine using VNIR-SWIR spectroscopy.
    Environmental monitoring and assessment, 2023, Oct-02, Volume: 195, Issue:11

    Topics: Cadmium; Coal; Environmental Monitoring; Kaolin; Lead; Rivers; Spectrum Analysis; Trace Elements

2023