Publication Beamlines Strategic Pillar
Gibb, Nick P.; Dynes, James J.; Chang, Wonjae (2017). Synergistic desalination of potash brine-impacted groundwater using a dual adsorbent. Science of the Total Environment 593-594, 99-108. 10.1016/j.scitotenv.2017.03.139. SM Environment
Chen, Chunmei; Dynes, James J.; Wang, Jian; Sparks, Donald L. (2014). Properties of Fe-Organic Matter Associations via Coprecipitation versus Adsorption. Environmental Science and Technology 48(23) , 13751-13759. 10.1021/es503669u. SM Environment
Bone, Sharon E.; Dynes, James J.; Cliff, John; Bargar, John R. (2017). Uranium(IV) adsorption by natural organic matter in anoxic sediments. Proceedings of the National Academy of Sciences of the United States of America 114(4) , 711-716. 10.1073/pnas.1611918114. SM Environment
Barber, Andrew; Brandes, Jay; Leri, Alessandra; Lalonde, Karine; Balind, Kathryn et al. (2017). Preservation of organic matter in marine sediments by inner-sphere interactions with reactive iron. Scientific Reports 7(1) , 366. 10.1038/s41598-017-00494-0. SM Environment
Alleon, Julien; Bernard, Sylvain; Le Guillou, Corentin; Daval, Damien; Skouri-Panet, Feriel et al. (2017). Organic molecular heterogeneities can withstand diagenesis. Scientific Reports 7(1) , 1508:1-9. 10.1038/s41598-017-01612-8. SM Environment
Yang, Jianjun; Wang, Jian; Pan, Weinan; Regier, Tom; Hu, Yongfeng et al. (2016). Retention Mechanisms of Citric Acid in Ternary Kaolinite-Fe(III)-Citrate Acid Systems Using Fe K-edge EXAFS and L3,2-edge XANES Spectroscopy. Scientific Reports 6(1) , 26127. 10.1038/srep26127. SGM, SXRMB Environment
Weyers, Eva; Strawn, Daniel G.; Peak, Derek; Baker, Leslie L. (2017). Inhibition of phosphorus sorption on calcite by dairy manure-sourced DOC. Chemosphere 184. 10.1016/j.chemosphere.2017.05.141. SXRMB, VLS-PGM Environment
Liu, Peng; Ptacek, Carol J.; Blowes, David W.; Landis, Richard C. (2016). Mechanisms of mercury removal by biochars produced from different feedstocks determined using X-ray absorption spectroscopy. Journal of Hazardous Materials 308, 233-242. 10.1016/j.jhazmat.2016.01.007. CLS-APS, SXRMB Environment
Henderson, G. S.; de Groot, F. M. F.; Moulton, B. J. A. (2014). X-ray Absorption Near-Edge Structure (XANES) Spectroscopy. Reviews in Mineralogy and Geochemistry 78(1) , 75-138. 10.2138/rmg.2014.78.3. SGM, SXRMB, VLS-PGM Environment
Bruun, Sander; Harmer, Sarah L.; Bekiaris, Georgios; Christel, Wibke; Zuin, Lucia et al. (2017). The effect of different pyrolysis temperatures on the speciation and availability in soil of P in biochar produced from the solid fraction of manure. Chemosphere 169, 377-386. 10.1016/j.chemosphere.2016.11.058. SXRMB, VLS-PGM Environment
Blanchard, Peter E.R.; Grosvenor, Andrew P.; Rowson, John; Hughes, Kebbi; Brown, Caitlin et al. (2016). Identifying calcium-containing mineral species in the JEB Tailings Management Facility at McClean Lake, Saskatchewan. Applied Geochemistry 73, 98-108. 10.1016/j.apgeochem.2016.08.001. SGM, SXRMB Environment
Hamilton, Jordan G.; Farrell, Richard E.; Chen, Ning; Reid, Joel; Feng, Renfei et al. (2016). Effects of Dolomitic Limestone Application on Zinc Speciation in Boreal Forest Smelter‐Contaminated Soils. Journal of Environmental Quality 45(6) , 1894-1900. 10.2134/jeq2016.06.0231. CMCF-BM, HXMA, VESPERS Environment
Hamilton, Jordan G.; Farrell, Richard E.; Chen, Ning; Feng, Renfei; Reid, Joel et al. (2016). Characterizing Zinc Speciation in Soils from a Smelter-Affected Boreal Forest Ecosystem. Journal of Environmental Quality 45(2) , 684-692. 10.2134/jeq2015.03.0145. CMCF-BM, HXMA, VESPERS Environment
Zhang, G. Y.; Hu, Y. F.; Xu, R. K.; Dynes, J. J.; Blyth, R. I. R. et al. (2009). Carbonate-induced structural perturbation of Al hydroxides. Clays and Clay Minerals 57(6) , 795-807. 10.1346/ccmn.2009.05706012. SGM, VLS-PGM Environment
Yadegari, Hossein; Li, Yongliang; Banis, Mohammad Norouzi; Li, Xifei; Wang, Biqiong et al. (2014). On rechargeability and reaction kinetics of sodium–air batteries. Energy and Environmental Science 7(11) , 3747-3757. 10.1039/c4ee01654h. VLS-PGM Environment