Publication Beamlines Strategic Pillar
Wu, J.; Wang, F.; Gui, W.; Cheng, W.; Yang, Y. et al. (2023). Crystal structure of a bright green fluorescent protein (StayGold) with triple mutations (N137A, Q140S, Y187F) in jellyfish Cytaeis uchidae from Biortus. Protein Data Bank: 7yre. CMCF-ID Materials
Jafar SOLTAN; Nazanin Charchi AGHDAM (2023). Method for the preparation of alkene oxides using ozone at room temperature. Patent Number: WO2023159315A1. HXMA Materials
Lucas Korol (2023). Global optimization of resonant x-ray reflectometry models: Analysis of perovskite oxide heterostructures. Supervisor: Green, Robert; Spiteri, Raymond. Saskatchewan, Canada: University of Saskatchewan. https://harvest.usask.ca/bitstreams/440aabde-fc08-483b-8215-096f6df97f66/download. REIXS Materials
Zhou, Yu; Li, Cheng; Zhang, Yu; Wang, Li; Fan, Xiulian et al. (2023). Controllable Thermochemical Generation of Active Defects in the Horizontal/Vertical MoS2 for Enhanced Hydrogen Evolution. Advanced Functional Materials . 10.1002/adfm.202304302. SXRMB Materials
Zhao, Bin; Shakouri, Mohsen; Feng, Renfei; Regier, Tom; Zeng, Yuxiang et al. (2023). Crystallization Engineering of CuNi2S4 Ultra‐Fine Nanocrystals with Optimized Band Structures for Efficient Photocatalytic Pollutant Degradation and Hydrogen Production. Small Methods 7(10) . 10.1002/smtd.202201612. SGM, SXRMB, VESPERS Materials
Zhao, Bin; Shakouri, Mohsen; Feng, Renfei; Regier, Tom; Zeng, Yuxiang et al. (2023). Crystallization Engineering of CuNi2S4 Ultra‐Fine Nanocrystals with Optimized Band Structures for Efficient Photocatalytic Pollutant Degradation and Hydrogen Production. Small Methods 7(10) . 10.1002/smtd.202201612. SGM, SXRMB, VESPERS Materials
Zhao, Bin; Shakouri, Mohsen; Feng, Renfei; Regier, Tom; Zeng, Yuxiang et al. (2023). Crystallization Engineering of CuNi2S4 Ultra‐Fine Nanocrystals with Optimized Band Structures for Efficient Photocatalytic Pollutant Degradation and Hydrogen Production. Small Methods 7(10) . 10.1002/smtd.202201612. SGM, SXRMB, VESPERS Materials
Zhang, Yuting; Liu, Na; Liu, Peng; Liu, YingYing; Lei, Yutao et al. (2023). Molecular-level investigation on removal mechanisms of aqueous hexavalent chromium by pine needle biochar. Arabian Journal of Chemistry 16(8) , 104966. 10.1016/j.arabjc.2023.104966. CLS-APS Materials
Zhang, Yatian; Jiang, Yi; Jiang, Gaopeng; Or, Tyler; Gao, Rui et al. (2023). Ordered Mesoporous Fe2N Electrocatalysts with Regulated Nitrogen Vacancy for Oxygen Reduction Reaction and Zn-air Battery. Nano Energy , 108672. 10.1016/j.nanoen.2023.108672. HXMA Materials
Zhang, Ning; Yu, Haifeng; Murphy, Aidan; Garayt, Matthew; Yu, Svena et al. (2023). A Liquid and Waste-free Method for Preparing Single Crystal Positive Electrode Materials for Li-ion Batteries. Journal of the Electrochemical Society 170(7) , 070515. 10.1149/1945-7111/ace4f7. BXDS-WLE Materials
Zhang, Chunyang; Chen, Jiatang; Yuan, Hao; Wang, Jian; Sun, Tianxiao et al. (2023). Atomically dispersed Ni-N-C electrocatalysts, studied by Ni L-edge spectro-ptychography. Journal of Electron Spectroscopy and Related Phenomena 266, 147364. 10.1016/j.elspec.2023.147364. SM Materials
Yin, Jianan; Huang, Guohe; Xiao, Huining; Chen, Ning; An, Chunjiang et al. (2023). Bioinspired and dual-functional nanocellulose aerogels for water disinfection and heavy metal removal. Nano Today 51, 101918. 10.1016/j.nantod.2023.101918. HXMA, MID-IR, VESPERS Materials
Yin, Jianan; Huang, Guohe; Xiao, Huining; Chen, Ning; An, Chunjiang et al. (2023). Bioinspired and dual-functional nanocellulose aerogels for water disinfection and heavy metal removal. Nano Today 51, 101918. 10.1016/j.nantod.2023.101918. HXMA, MID-IR, VESPERS Materials
Yin, Jianan; Huang, Guohe; Xiao, Huining; Chen, Ning; An, Chunjiang et al. (2023). Bioinspired and dual-functional nanocellulose aerogels for water disinfection and heavy metal removal. Nano Today 51, 101918. 10.1016/j.nantod.2023.101918. HXMA, MID-IR, VESPERS Materials
Yang, Bingqian; Graham, Nigel; Liu, Peng; Liu, Mengjie; Gregory, John et al. (2023). Atomic-Level Structural Differences between Fe(III) Coprecipitates Generated by the Addition of Fe(III) Coagulants and by the Oxidation of Fe(II) Coagulants Determine Their Coagulation Behavior in Phosphate and DOM Removal. Environmental Science and Technology 57(33) , 12489-12500. 10.1021/acs.est.3c03463. CLS-APS Materials