Publication Beamlines Strategic Pillar
Blowes, D.W.; Ptacek, C.J.; Jambor, J.L.; Weisener, C.G.; Paktunc, D. et al. (2014). The Geochemistry of Acid Mine Drainage. In Barbara Sherwood Lollar(Ed.), Treatise on Geochemistry. Elsevier. , 131-190 10.1016/b978-0-08-095975-7.00905-0. CLS-APS Environment
Daniel M. Chevrier (2016). Studies on the Structural and Electronic Properties of Thiolate-protected Gold Nanoclusters by X-ray Spectroscopy. Nova Scotia, Canada: Dalhousie University. . CLS-APS, HXMA, SXRMB Materials
Clar, Justin G.; Li, Xuan; Impellitteri, Christopher A.; Bennett-Stamper, Christina; Luxton, Todd P. et al. (2016). Copper Nanoparticle Induced Cytotoxicity to Nitrifying Bacteria in Wastewater Treatment: A Mechanistic Copper Speciation Study by X-ray Absorption Spectroscopy. Environmental Science and Technology 50(17) , 9105-9113. 10.1021/acs.est.6b01910. CLS-APS Environment
Lastra, R.; Paktunc, D. (2016). An estimation of the variability in automated quantitative mineralogy measurements through inter-laboratory testing. Minerals Engineering 95, 138-145. 10.1016/j.mineng.2016.06.025. CLS-APS Environment
McDonald, Andrew M.; Cabri, Louis J.; Stanley, Chris J.; Good, David J.; Redpath, Jason et al. (2015). Coldwellite, Pd3Ag2S, A New Mineral Species From the Marathon Deposit, Coldwell Complex, Ontario, Canada. Canadian Mineralogist 53(5) , 845-857. 10.3749/canmin.1500020. CLS-APS Environment
Lobacheva, Olga (2015). Ion beam modification of strontium titanate and highly oriented pyrolytic graphite. Supervisor: Goncharova, Lyudmila; Sham, T.K.. Ontario, Canada: Western University. https://www.proquest.com/openview/fb9f1ee139f0155e68d925403e620064/1?pq-origsite=gscholar&cbl=18750&diss=y. CLS-APS, SGM Materials
Liana K.T. Stammers (2016). Geochemical Constraints of the Gold Mineralization Sources from the South Mine Complex and the Main/’04 Breaks, Macassa Mine, Kirkland Lake, Ontario. Supervisor: Banerjee, Neil R.; Van Loon, Lisa L.. ON, Canada: Western University. . CLS-APS, VESPERS Environment
Ye, Hualin; Wang, Lu; Deng, Shuo; Zeng, Xiaoqiao; Nie, Kaiqi et al. (2016). Amorphous MoS 3 Infiltrated with Carbon Nanotubes as an Advanced Anode Material of Sodium‐Ion Batteries with Large Gravimetric, Areal, and Volumetric Capacities. Advanced Energy Materials 7(5) , 1601602. 10.1002/aenm.201601602. CLS-APS Materials
Cutler, J. N.; Chen, N.; Jiang, D. T.; Demopoulos, G. P.; Jia, Y. et al. (2003). The nature of arsenic in uranium mill tailings by X-ray absorption spectroscopy. Journal de Physique IV (Proceedings) 107, 337-340. 10.1051/jp4:20030310. CLS-APS Environment
Yiu; Yun Mui (2016). Techniques for Structural Investigations (Theory and Experimental). In Gurinder Kaur Ahluwalia(Ed.), Applications of Chalcogenides: S, Se, and Te. Springer. , 61-104 10.1007/978-3-319-41190-3_2. CLS-APS, SGM, SXRMB, VLS-PGM Materials
Petrash, D. A.; Gueneli, N.; Brocks, J. J.; Mendez-Dot, J. A.; Gonzalez-Arismendi, G. et al. (2016). Black shale deposition and early diagenetic dolomite cementation during Oceanic Anoxic Event 1: The mid-Cretaceous Maracaibo Platform, northwestern South America. American Journal of Science 316(7) , 669-711. 10.2475/07.2016.03. CLS-APS Environment
Sanjukta Choudhury (2016). Development of confocal X-ray fluorescence imaging for biological and archaeological applications. Supervisor: Drs Ingrid Pickering, Graham George, Ian Coulthard. SK, Canada: University of Saskatchewan, Canada. . CLS-APS
Choudhury, S.; Swanston, T.; Varney, T. L.; Cooper, D. M. L.; George, G. N. et al. (2016). Confocal x‐ray Fluorescence Imaging Facilitates High‐Resolution Elemental Mapping in Fragile Archaeological Bone. Archaeometry 58(S1) , 207-217. 10.1111/arcm.12232. CLS-APS Materials
Sanjukta choudhury (2016). DEVELOPMENT OF CONFOCAL X-RAY FLUORESCENCE TECHNIQUES FOR BIOLOGICAL AND ARCHAEOLOGICAL APPLICATIONS. Supervisor: Pickering Ingrid, George Graham, Coulthard Ian. SK: U of S. . CLS-APS
Dogan Paktunc, Michael C. Moncur, S. Jean Birks, John J. Gibson, Yi Yi (2015). Predicting the mobilization of dissolved metals, organics and gas Predicting the mobilization of dissolved metals, organics and gas Predicting the mobilization of dissolved metals, organics and gas Predicting the mobilization of dissolved metals, organics. Canada: Integrated Water Management, Alberta Innovates – Technology Futures, CANMET Mining and Mineral Scie . http://www.geoconvention.com/archives/2015/258_GC2015_Predicting_the_mobilization_of_dissolved_metals.pdf. CLS-APS