At the dated check, the references listed below either did not resolve in
Crossref or DataCite, or carried a retraction notice. Each one is shown with the
registry record that put it there.
The 46 checked references that resolve
resolves10.1021/es5003692Uranium Reduction by <i>Shewanella oneidensis</i> MR-1 as a Function of NaHCO<sub>3</sub> Concentration: Surface Complexation Control of Reduction Kinetics
resolves10.1021/jp412404wEnhanced Removal of Uranium(VI) by Nanoscale Zerovalent Iron Supported on Na–Bentonite and an Investigation of Mechanism
resolves10.1039/C4QI00071DFabrication of Fe/Fe
<sub>3</sub>
C@porous carbon sheets from biomass and their application for simultaneous reduction and adsorption of uranium(
<scp>vi</scp>
) from solution
resolves10.1021/jp8091094Plasma Induced Grafting Carboxymethyl Cellulose on Multiwalled Carbon Nanotubes for the Removal of UO<sub>2</sub><sup>2+</sup> from Aqueous Solution
resolves10.1007/s10967-009-0323-0Influence of contact time, pH, soil humic/fulvic acids, ionic strength and temperature on sorption of U(VI) onto MX-80 bentonite
resolves10.1023/A:1013212130177Sorption mechanism of U(VI) on a reference montmorillonite: Binding to the internal and external surfaces
resolves10.1016/j.jhazmat.2009.10.017Uranium removal from groundwater by natural clinoptilolite zeolite: Effects of pH and initial feed concentration
resolves10.1021/es505590jRETRACTED: Adsorption and Desorption of U(VI) on Functionalized Graphene Oxides: A Combined Experimental and Theoretical Study
resolves10.1007/s11426-014-5195-7Poly(amidoxime)-reduced graphene oxide composites as adsorbents for the enrichment of uranium from seawater
resolves10.1007/s10967-011-1325-2Characterization of nano-iron oxyhydroxides and their application in UO2 2+ removal from aqueous solutions
resolves10.1016/j.seppur.2011.09.050Comparison of U(VI) removal from contaminated groundwater by nanoporous alumina and non-nanoporous alumina
resolves10.1021/es103061vUranium Isotope Fractionation during Adsorption to Mn-Oxyhydroxides
resolves10.1166/jnn.2012.6448Titanate Nanotubes as a Promising Absorbent for High Effective Radioactive Uranium Ions Uptake
resolves10.1039/C3NR03467DNovel fungus–titanate bio-nanocomposites as high performance adsorbents for the efficient removal of radioactive ions from wastewater
resolves10.1016/j.jhazmat.2013.02.016Adsorption and desorption of Cd(II) onto titanate nanotubes and efficient regeneration of tubular structures
resolves10.1016/j.watres.2013.12.043Synergy of photocatalysis and adsorption for simultaneous removal of Cr(VI) and Cr(III) with TiO2 and titanate nanotubes
resolves10.1016/j.jcis.2014.02.030Adsorption mechanisms of thallium(I) and thallium(III) by titanate nanotubes: Ion-exchange and co-precipitation
resolves10.1016/j.cej.2012.11.029Influence of pH, ionic strength and humic acid on competitive adsorption of Pb(II), Cd(II) and Cr(III) onto titanate nanotubes
resolves10.1002/adma.200702055Titanate Nanofibers as Intelligent Absorbents for the Removal of Radioactive Ions from Water
resolves10.1002/anie.201103286Capture of Radioactive Cesium and Iodide Ions from Water by Using Titanate Nanofibers and Nanotubes
resolves10.1021/jp803826gLayered Titanate Nanofibers as Efficient Adsorbents for Removal of Toxic Radioactive and Heavy Metal Ions from Water
resolves10.1039/B911085BSorption induced structural deformation of sodium hexa-titanate nanofibers and their ability to selectively trap radioactive Ra(ii) ions from water
resolves10.1007/s11426-011-4370-3Adsorption of Eu(III) on titanate nanotubes studied by a combination of batch and EXAFS technique
resolves10.1016/j.cej.2012.10.076Microscopic insights into the temperature-dependent adsorption of Eu(III) onto titanate nanotubes studied by FTIR, XPS, XAFS and batch technique
resolves10.1016/j.cej.2010.12.060Influence of solution chemistry on the removal of Ni(II) from aqueous solution to titanate nanotubes
resolves10.1016/j.cej.2014.03.030EXAFS study of the interfacial interaction of nickel(II) on titanate nanotubes: Role of contact time, pH and humic substances
resolves10.1007/s10967-012-2389-3Role of solution chemistry on the trapping of radionuclide Th(IV) using titanate nanotubes as an efficient adsorbent
resolves10.1021/es8007062Sorption of Eu(III) on Humic Acid or Fulvic Acid Bound to Hydrous Alumina Studied by SEM-EDS, XPS, TRLFS, and Batch Techniques
resolves10.1016/j.jhazmat.2010.01.084Adsorption of copper(II) on multiwalled carbon nanotubes in the absence and presence of humic or fulvic acids
resolves10.1007/s11356-012-1278-1Colloidal diatomite, radionickel, and humic substance interaction: a combined batch, XPS, and EXAFS investigation
resolves10.1021/es202108qMacroscopic and Microscopic Investigation of Ni(II) Sequestration on Diatomite by Batch, XPS, and EXAFS Techniques
resolves10.1021/es0348344Use of Spectroscopic Techniques for Uranium(VI)/Montmorillonite Interaction Modeling
resolves10.1007/s10967-014-2998-0Immobilization of uranium(VI) onto Mg2Al layered double hydroxide: role of key geochemical parameters
resolves10.1007/s10967-010-0846-4Effect of pH, ionic strength and humic substances on the adsorption of Uranium (VI) onto Na-rectorite
resolves10.1007/s11426-014-5119-6Simultaneous removal of uranium and humic acid by cyclodextrin modified graphene oxide nanosheets
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