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Investigation of scandium in bauxite residues of different origin
Gentzmann, M. C., Schraut, K., Vogel, C., Gäbler, H. E., Huthwelker, T., & Adam, C. (2021). Investigation of scandium in bauxite residues of different origin. Applied Geochemistry, 126, 104898 (18 pp.). https://doi.org/10.1016/j.apgeochem.2021.104898
Preface / special issue "Geochemistry research for cement-based materials in nuclear waste disposal applications"
Altmaier, M., Lothenbach, B., Metz, V., & Wieland, E. (2020). Preface / special issue "Geochemistry research for cement-based materials in nuclear waste disposal applications". Applied Geochemistry, 123, 104701 (3 pp.). https://doi.org/10.1016/j.apgeochem.2020.104701
Uncertainty and sensitivity analysis of the chemistry of cesium sorption in deep geological repositories
Ayoub, A., Pfingsten, W., Podofillini, L., & Sansavini, G. (2020). Uncertainty and sensitivity analysis of the chemistry of cesium sorption in deep geological repositories. Applied Geochemistry, 117, 104607 (12 pp.). https://doi.org/10.1016/j.apgeochem.2020.104607
Micro-X-ray diffraction and chemical mapping of aged interfaces between cement pastes and Opalinus Clay
Bernard, E., Jenni, A., Fisch, M., Grolimund, D., & Mäder, U. (2020). Micro-X-ray diffraction and chemical mapping of aged interfaces between cement pastes and Opalinus Clay. Applied Geochemistry, 115, 104538 (17 pp.). https://doi.org/10.1016/j.apgeochem.2020.104538
Profiles of chloride in matrix porewater as natural tracer for matrix diffusion in crystalline rocks
Eichinger, F., Gimmi, T., Möri, A., & Rüedi, J. (2020). Profiles of chloride in matrix porewater as natural tracer for matrix diffusion in crystalline rocks. Applied Geochemistry, 118, 104635 (12 pp.). https://doi.org/10.1016/j.apgeochem.2020.104635
Retention and diffusion of radioactive and toxic species on cementitious systems: main outcome of the CEBAMA project
Grambow, B., López-García, M., Olmeda, J., Grivé, M., Marty, N. C. M., Grangeon, S., … Ribet, S. (2020). Retention and diffusion of radioactive and toxic species on cementitious systems: main outcome of the CEBAMA project. Applied Geochemistry, 112, 104480 (14 pp.). https://doi.org/10.1016/j.apgeochem.2019.104480
Reactive transport modelling of a low-pH concrete / clay interface
Idiart, A., Laviña, M., Kosakowski, G., Cochepin, B., Meeussen, J. C. L., Samper, J., … Nieves, A. (2020). Reactive transport modelling of a low-pH concrete / clay interface. Applied Geochemistry, 115, 104562 (16 pp.). https://doi.org/10.1016/j.apgeochem.2020.104562
Evolution of HTO and <sup>36</sup>Cl<sup>-</sup> diffusion through a reacting cement-clay interface (OPC paste-Na montmorillonite) over a time of six years
Luraschi, P., Gimmi, T., Van Loon, L. R., Shafizadeh, A., & Churakov, S. V. (2020). Evolution of HTO and 36Cl- diffusion through a reacting cement-clay interface (OPC paste-Na montmorillonite) over a time of six years. Applied Geochemistry, 119, 104581 (13 pp.). https://doi.org/10.1016/j.apgeochem.2020.104581
Uptake of iodide by calcium aluminate phases (AFm phases)
Nedyalkova, L., Lothenbach, B., Geng, G., Mäder, U., & Tits, J. (2020). Uptake of iodide by calcium aluminate phases (AFm phases). Applied Geochemistry, 116, 104559 (13 pp.). https://doi.org/10.1016/j.apgeochem.2020.104559
Structural characterisation of magnesium (sodium) aluminium silicate hydrate (M-(N)-A-S-H) phases by X-ray absorption near-edge spectroscopy
Vespa, M., Borca, C., Huthwelker, T., Lothenbach, B., Dähn, R., & Wieland, E. (2020). Structural characterisation of magnesium (sodium) aluminium silicate hydrate (M-(N)-A-S-H) phases by X-ray absorption near-edge spectroscopy. Applied Geochemistry, 123, 104750 (8 pp.). https://doi.org/10.1016/j.apgeochem.2020.104750
Geochemical modelling of the effect of waste degradation processes on the long-term performance of waste forms
Wieland, E., Kosakowski, G., Lothenbach, B., & Kulik, D. A. (2020). Geochemical modelling of the effect of waste degradation processes on the long-term performance of waste forms. Applied Geochemistry, 115, 104539 (15 pp.). https://doi.org/10.1016/j.apgeochem.2020.104539
Fe(III) uptake by calcium silicate hydrates
Mancini, A., Wieland, E., Geng, G., Dähn, R., Skibsted, J., Wehrli, B., & Lothenbach, B. (2019). Fe(III) uptake by calcium silicate hydrates. Applied Geochemistry, 113, 104460 (15 pp.). https://doi.org/10.1016/j.apgeochem.2019.104460
Cation exchange and surface complexation of lead on montmorillonite and illite including competitive adsorption effects
Marques Fernandes, M., & Baeyens, B. (2019). Cation exchange and surface complexation of lead on montmorillonite and illite including competitive adsorption effects. Applied Geochemistry, 100, 190-202. https://doi.org/10.1016/j.apgeochem.2018.11.005
Characterization of spatial porosity and mineral distribution of crystalline rock using X-ray micro computed tomography, C-14-PMMA autoradiography and scanning electron microscopy
Voutilainen, M., Miettinen, A., Sardini, P., Parkkonen, J., Sammaljärvi, J., Gylling, B., … Siitari-Kauppi, M. (2019). Characterization of spatial porosity and mineral distribution of crystalline rock using X-ray micro computed tomography, C-14-PMMA autoradiography and scanning electron microscopy. Applied Geochemistry, 101, 50-61. https://doi.org/10.1016/j.apgeochem.2018.12.024
Combined tracer through-diffusion of HTO and <sup>22</sup>Na through Na-montmorillonite with different bulk dry densities
Bestel, M., Glaus, M. A., Frick, S., Gimmi, T., Juranyi, F., Van Loon, L. R., & Diamond, L. W. (2018). Combined tracer through-diffusion of HTO and 22Na through Na-montmorillonite with different bulk dry densities. Applied Geochemistry, 93, 158-166. https://doi.org/10.1016/j.apgeochem.2018.04.008
Identifying temporally and spatially changing boundary conditions at an aquifer – aquitard interface using helium in porewater
Rufer, D., Waber, H. N., & Gimmi, T. (2018). Identifying temporally and spatially changing boundary conditions at an aquifer – aquitard interface using helium in porewater. Applied Geochemistry, 96, 62-77. https://doi.org/10.1016/j.apgeochem.2018.05.022
The diffusion of SO<sub>4</sub><sup>2-</sup> in Opalinus Clay: measurements of effective diffusion coefficients and evaluation of their importance in view of microbial mediated reactions in the near field of radioactive waste repos
Van Loon, L. R., Leupin, O. X., & Cloet, V. (2018). The diffusion of SO42- in Opalinus Clay: measurements of effective diffusion coefficients and evaluation of their importance in view of microbial mediated reactions in the near field of radioactive waste repositories. Applied Geochemistry, 95, 19-24. https://doi.org/10.1016/j.apgeochem.2018.05.009
Thermodynamics of the solid solution - aqueous solution system (Ba,Sr,Ra)SO<sub>4</sub> + H<sub>2</sub>O: I. the effect of strontium content on radium uptake by barite
Vinograd, V. L., Kulik, D. A., Brandt, F., Klinkenberg, M., Weber, J., Winkler, B., & Bosbach, D. (2018). Thermodynamics of the solid solution - aqueous solution system (Ba,Sr,Ra)SO4 + H2O: I. the effect of strontium content on radium uptake by barite. Applied Geochemistry, 89, 59-74. https://doi.org/10.1016/j.apgeochem.2017.11.009
Thermodynamics of the solid solution - aqueous solution system (Ba,Sr,Ra)SO<sub>4</sub> + H<sub>2</sub>O: II. radium retention in barite-type minerals at elevated temperatures
Vinograd, V. L., Kulik, D. A., Brandt, F., Klinkenberg, M., Weber, J., Winkler, B., & Bosbach, D. (2018). Thermodynamics of the solid solution - aqueous solution system (Ba,Sr,Ra)SO4 + H2O: II. radium retention in barite-type minerals at elevated temperatures. Applied Geochemistry, 93, 190-208. https://doi.org/10.1016/j.apgeochem.2017.10.019
Multicomponent diffusion in a 280  m thick argillaceous rock sequence
Wersin, P., Gimmi, T., Mazurek, M., Alt-Epping, P., Pękala, M., & Traber, D. (2018). Multicomponent diffusion in a 280  m thick argillaceous rock sequence. Applied Geochemistry, 95, 110-123. https://doi.org/10.1016/j.apgeochem.2018.05.013
 

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