Publication Beamlines Strategic Pillar
Peng, Wenfeng; Deshmukh, Amol; Chen, Ning; Lv, Zhengxing; Zhao, Shijing et al. (2022). Deciphering the Dynamic Structure Evolution of Fe- and Ni-Codoped CoS2 for Enhanced Water Oxidation. ACS Catalysis 12(7) , 3743-3751. 10.1021/acscatal.2c00328. HXMA Materials
Kim, Minu; McNally, Graham M.; Kim, Hun-Ho; Oudah, Mohamed; Gibbs, Alexandra S. et al. (2022). Superconductivity in (Ba,K)SbO3. Nature Materials 21(6) . 10.1038/s41563-022-01203-7. REIXS, SGM Materials
Zhang, Wenyao; Dong, Muyao; Jiang, Keren; Yang, Diling; Tan, Xuehai et al. (2022). Real-Time Reconstructed Interphase Enables Reversible Aqueous Zinc Battery Chemistries. SSRN Electronic Journal . 10.2139/ssrn.4013048. HXMA Materials
Jiang, Yi; Deng, Ya-Ping; Liang, Ruilin; Chen, Ning; King, Graham et al. (2022). Linker-Compensated Metal–Organic Framework with Electron Delocalized Metal Sites for Bifunctional Oxygen Electrocatalysis. Journal of the American Chemical Society 144(11) , 4783-4791. 10.1021/jacs.1c10295. BIOXAS-MAIN, BXDS-WHE, HXMA, SGM, SXRMB Materials
Chen, Zhigang; Xu, Yafeng; Ding, Ding; Song, Ge; Gan, Xingxing et al. (2022). Thermal migration towards constructing W-W dual-sites for boosted alkaline hydrogen evolution reaction. Nature Communications 13(1) . 10.1038/s41467-022-28413-6. BIOXAS-SIDE, BIOXAS-SPECTROSCOPY Materials
Hung, Sung-Fu; Xu, Aoni; Wang, Xue; Li, Fengwang; Hsu, Shao-Hui et al. (2022). A metal-supported single-atom catalytic site enables carbon dioxide hydrogenation. Nature Communications 13(1) . 10.1038/s41467-022-28456-9. CLS-APS, SGM, SXRMB Materials
Luo, Dan; Ma, Chuyin; Hou, Junfeng; Zhang, Zhen; Feng, Renfei et al. (2022). Integrating Nanoreactor with O–Nb–C Heterointerface Design and Defects Engineering Toward High‐Efficiency and Longevous Sodium Ion Battery. Advanced Energy Materials 12(18) , 2103716. 10.1002/aenm.202103716. VESPERS Materials
Gauthier, Roby; Luscombe, Aidan; Bond, Toby; Bauer, Michael; Johnson, Michel et al. (2022). How do Depth of Discharge, C-rate and Calendar Age Affect Capacity Retention, Impedance Growth, the Electrodes, and the Electrolyte in Li-Ion Cells?. Journal of the Electrochemical Society 169(2) , 020518. 10.1149/1945-7111/ac4b82. BMIT-ID Materials
Bond, Toby; Gauthier, Roby; Eldesoky, A.; Harlow, Jessie; Dahn, J. R. et al. (2022). In Situ Imaging of Electrode Thickness Growth and Electrolyte Depletion in Single-Crystal vs Polycrystalline LiNixMnyCozO2/Graphite Pouch Cells using Multi-Scale Computed Tomography. Journal of the Electrochemical Society 169(2) , 020501. 10.1149/1945-7111/ac4b83. BMIT-ID Materials
MacIver, Michael R.; Alizadeh, Hamid; Kuppusamy, Vinoth Kumar; Hamza, Hassan; Pawlik, Marek et al. (2022). The macro-structure of quartz flocs. Powder Technology 395, 255-266. 10.1016/j.powtec.2021.09.052. BMIT-ID Materials
Luo, Yuting; Rezaei, Shahed; Santos, David A.; Zhang, Yuwei; Handy, Joseph V. et al. (2022). Cation reordering instead of phase transitions: Origins and implications of contrasting lithiation mechanisms in 1D ζ- and 2D α-V 2 O 5. Proceedings of the National Academy of Sciences of the United States of America 119(4) , e2115072119. 10.1073/pnas.2115072119. SM Materials
Li, Matthew; Liu, Wenwen; Luo, Dan; Chen, Zhongwei; Amine, Khalil et al. (2022). Evidence of Morphological Change in Sulfur Cathodes upon Irradiation by Synchrotron X-rays. ACS Energy Letters 7(2) , 577-582. 10.1021/acsenergylett.1c02531. SM Materials
Huang, Jianwei; Yu, Rong; Xu, Zhijun; Zhu, Jian-Xin; Oh, Ji Seop et al. (2022). Correlation-driven electronic reconstruction in FeTe1−xSex. Communications Physics 5(1) . 10.1038/s42005-022-00805-6. QMSC Materials
Niketic, Svetlana; Yim, Chae-Ho; Zhou, Jigang; Wang, Jian; Abu-Lebdeh, Yaser et al. (2022). Influence of Ti Substitution on Electrochemical Performance and Evolution of LiMn1.5−x Ni0.5TixO4 (x = 0.05, 0.1, 0.3) as a High Voltage Cathode Material with a Very Long Cycle Life. Inorganics 10(1) , 10. 10.3390/inorganics10010010. SM Materials
Geng, Chenxi; Rathore, Divya; Heino, Dylan; Zhang, Ning; Hamam, Ines et al. (2021). Mechanism of Action of the Tungsten Dopant in LiNiO 2 Positive Electrode Materials. Advanced Energy Materials 12(6) , 2103067. 10.1002/aenm.202103067. IDEAS Materials