Publication Beamlines Strategic Pillar
Ansah, Andrew Tetteh (2026). Synthesis of synthetic rock (SYNROC) materials using one-step methods. Supervisor: Grosvenor, Andrew. Saskatchewan, Canada: University of Saskatchewan. https://hdl.handle.net/10388/18921. CLS-APS, HXMA, IDEAS, SXRMB Materials
Arthur, Ebenezer (2026). Synthesis and characterization of multi-phase glass-ceramic composite materials. Supervisor: Grosvenor, Andrew. Saskatchewan, Canada: University of Saskatchewan. https://hdl.handle.net/10388/18254. CLS-APS, IDEAS, VLS-PGM Materials
David James Morris (2025). Local Structure of Nanoalloys: From Bimetallic to High-Entropy Alloy Nanoparticles. Supervisor: Zhang, Peng. Nova Scotia, Canada: Dalhousie University. . CLS-APS Materials
Jocelyn Ross-Lindeman (2024). Investigation of the Speciation of Arsenic and Selenium in Pyrites and Implications for Element Mobilization During Oxidation of Arsenic- and Selenium-Bearing Pyrites. Supervisor: Allen, Diana. British Columbia, Canada: Simon Fraser University. https://summit.sfu.ca/item/38150. CLS-APS Materials
Mehrnaz Mikhchian (2025). An investigation of the long-term aqueous corrosion behaviour of glass, crystalline ceramics, and glass-ceramic composite materials. Supervisor: Grosvenor, Andrew Paul. Saskatoon (SK, Canada): University of Saskatchewan. https://hdl.handle.net/10388/16536. CLS-APS, IDEAS, SXRMB, VLS-PGM Materials
Jehad ABED; Steven Thorpe; Edward Sargent (2025). Electrocatalysts comprising transition metals and chalcogen for oxygen evolution reactions (OER) and manufacturing thereof. Patent Number: US12234157B2. CLS-APS, SGM Materials
Qi Liu; He Zhu (2024). Nickel-rich layered oxide cathode materials for Li ion batteries. Patent Number: US11942638B2. CLS-APS, SGM Materials
Zhu Chen; Edward Sargent; David Sinton (2024). Processes and systems for the selective electrochemical reduction of co2 in acidic conditions, cathodes and catalysts used in the same. Patent Number: WO2024084288A2. CLS-APS Materials
Abdelhafiz, Ali; Mohammed, Mona H.; Abed, Jehad; Lee, Dong‐Chan; Chen, Mengjie et al. (2024). Tri‐Metallic Catalyst for Oxygen Evolution Reaction Enables Continuous Operation of Anion Exchange Membrane Electrolyzer at 1A cm−2 for Hundreds of Hours. Advanced Energy Materials 14(16) . 10.1002/aenm.202303350. CLS-APS Materials
Abed, Jehad; Heras-Domingo, Javier; Sanspeur, Rohan Yuri; Luo, Mingchuan; Alnoush, Wajdi et al. (2024). Pourbaix Machine Learning Framework Identifies Acidic Water Oxidation Catalysts Exhibiting Suppressed Ruthenium Dissolution. Journal of the American Chemical Society 146(23) , 15740-15750. 10.1021/jacs.4c01353. CLS-APS, SM Materials
Ali, Feysal M.; Gouda, Abdelaziz; Duchesne, Paul N.; Hmadeh, Mohamad; O’Brien, Paul G. et al. (2024). In situ probes into the structural changes and active state evolution of a highly selective iron-based CO2 reduction photocatalyst. Chem Catalysis , 100983. 10.1016/j.checat.2024.100983. CLS-APS Materials
Aminfar, Parimah; Ferguson, Travis; Steele, Emily; MacNeil, Emerson M.; Matus, María Francisca et al. (2024). Accelerated size-focusing light activated synthesis of atomically precise fluorescent Au22(Lys–Cys–Lys)16 clusters. Nanoscale 16(1) , 205-211. 10.1039/d3nr04793h. CLS-APS Materials
Arthur, Ebenezer; Grosvenor, Andrew P. (2026). Synthesis of Monazite‐Borosilicate Glass Composites by the Ceramic Method. International Journal of Ceramic Engineering & Science 8(4) . 10.1002/ces2.70058. CLS-APS, VLS-PGM Materials
Berens, Matthew John; Michaud, Alexander Bryce; VanderJeugdt, Erin; Miah, Imtiaz; Sutor, Frederick W. et al. (2024). Phosphorus Interactions with Iron in Undisturbed and Disturbed Arctic Tundra Ecosystems. Environmental Science and Technology 58(26) , 11400-11410. 10.1021/acs.est.3c09072. CLS-APS, SXRMB Agriculture
Brinkman, Donald B.; López, J. Andrés; Erickson, Gregory M.; Eberle, Jaelyn J.; Muñoz, Xochitl et al. (2025). Fishes from the Upper Cretaceous Prince Creek Formation, North Slope of Alaska, and their palaeobiogeographical significance. Papers in Palaeontology 11(3) . 10.1002/spp2.70014. CLS-APS Environment