Publication Beamlines Strategic Pillar
Paknahad, Elham; Grosvenor, Andrew P. (2017). Investigation of CeTi2O6- and CaZrTi2O7-containing glass–ceramic composite materials. Canadian Journal of Chemistry 95(11) , 1-12. 10.1139/cjc-2016-0633. CLS-APS, SXRMB, VLS-PGM Materials
Paknahad, Elham; Grosvenor, Andrew P. (2017). Investigation of the stability of glass-ceramic composites containing CeTi2O6 and CaZrTi2O7 after ion implantation. Solid State Sciences 74, 109-117. 10.1016/j.solidstatesciences.2017.10.013. CLS-APS, VLS-PGM Materials
Paknahad, Elham; Grosvenor, Andrew P. (2017). Investigation of CeTi2O6- and CaZrTi2O7-containing glass–ceramic composite materials. Canadian Journal of Chemistry 95(11) , 1-12. 10.1139/cjc-2016-0633. CLS-APS, SXRMB, VLS-PGM Materials
Paikaray, Susanta; Essilfie-Dughan, Joseph; Hendry, M. Jim (2018). Ionic substitution of Mg2+ for Al3+ and Fe3+ with octahedral coordination in hydroxides facilitate precipitation of layered double hydroxides. Geochimica et Cosmochimica Acta 220, 217-234. 10.1016/j.gca.2017.10.003. SGM Materials
Paidi, Vinod K.; Shepit, Michael; Freeland, John W.; Brewe, Dale L.; Roberts, Charles A. et al. (2021). Intervening Oxygen Enabled Magnetic Moment Modulation in Spinel Nanostructures. Journal of Physical Chemistry C 125(48) , 26688-26697. 10.1021/acs.jpcc.1c06494. CLS-APS Materials
Padmanabhan, A; MacDonald, M A; Ryan, C H; Zuin, L; Reddish, T J et al. (2010). An angle-resolved dissociative photoionization study of the c4Σustate in O+2using the TPEPICO technique. Journal of Physics B: Atomic. Molecular and Optical Physics 43(16) , 165204. 10.1088/0953-4075/43/16/165204. VLS-PGM Materials
Pablo Ingino (2015). Composition and Properties of Various Organo-Mineral Structures Produced by (Fe(II)-oxidizing Bacteria. Supervisor: Obst, Martin. Germany: University of Tuebingen. . SM Materials
Ozden, Adnan; Wang, Yuhang; Li, Fengwang; Luo, Mingchuan; Sisler, Jared et al. (2021). Cascade CO2 electroreduction enables efficient carbonate-free production of ethylene. Joule 5(3) , 706-719. 10.1016/j.joule.2021.01.007. SGM Materials
Ozden, Adnan; Liu, Yanjiang; Dinh, Cao-Thang; Li, Jun; Ou, Pengfei et al. (2021). Gold Adparticles on Silver Combine Low Overpotential and High Selectivity in Electrochemical CO2 Conversion. ACS Applied Energy Materials 4(8) , 7504-7512. 10.1021/acsaem.1c01577. SXRMB Materials
Ouyang, Huan; Chen, Ning; Chang, Guojing; Zhao, Xiaoliang; Sun, Yuanyuan et al. (2018). Selective Capture of Toxic Selenite Anions by Bismuth‐based Metal–Organic Frameworks. Angewandte Chemie - International Edition 57(40) . 10.1002/anie.201807891. HXMA Materials
O'Sullivan, Eugene J.; Camagong, C; Lavoie, C.; Jordan-Sweet, J.; Muir, D. et al. (2020). Electroless Deposition for Nanoscale Applications: Challenges and Opportunities. ECS Meeting Abstracts MA2020-02(17) , 1487-1487. 10.1149/ma2020-02171487mtgabs. IDEAS Materials
Opeoluwa E. Fadele (2018). Development and Characterization of Raffia Palm Fiber Reinforced Polymer Matrix Composites. Supervisor: Oguocha, Ikechukwuka N.; Odeshi, Akindele G.. Saskatchewan, Canada: University of Saskatchewan. http://hdl.handle.net/10388/8349. MID-IR Materials
Olumorin, Theo (2021). Investigation of Size Specific Fe2O3 nanoparticles: Towards Single Nanoparticle Resolved Spectro-ptychography. Supervisor: Urquhart, Stephen G.. Saskatchewan, Canada: University of Saskatchewan. . SM Materials
Olubamiji, Adeola D.; Izadifar, Zohreh; Zhu, Ning; Chang, Tuanjie; Chen, Xiongbiao et al. (2016). Using synchrotron radiation inline phase-contrast imaging computed tomography to visualize three-dimensional printed hybrid constructs for cartilage tissue engineering. Journal of Synchrotron Radiation 23(3) , 802-812. 10.1107/s1600577516002344. BMIT-ID Materials
Olubamiji; Adeola Deborah (2017). Development of 3D-Printed Cartilage Constructs and Their Non-Invasive Assessment by Synchrotron-Based Inline-Phase Contrast Imaging Computed Tomography. Supervisor: Chen, Daniel; Eames, Brian. Saskatchewan, Canada: University of Saskatchewan. http://hdl.handle.net/10388/7670. BMIT-ID Materials