William E. Gent
William E. Gent
Research Scientist, Sila Nanotechnologies
Verified email at - Homepage
Cited by
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Coupling between oxygen redox and cation migration explains unusual electrochemistry in lithium-rich layered oxides
WE Gent, K Lim, Y Liang, Q Li, T Barnes, SJ Ahn, KH Stone, M McIntire, ...
Nature communications 8 (1), 2091, 2017
Correlative operando microscopy of oxygen evolution electrocatalysts
JT Mefford, AR Akbashev, M Kang, CL Bentley, WE Gent, HD Deng, ...
Nature 593 (7857), 67-73, 2021
Metal–oxygen decoordination stabilizes anion redox in Li-rich oxides
J Hong, WE Gent, P Xiao, K Lim, DH Seo, J Wu, PM Csernica, CJ Takacs, ...
Nature materials 18 (3), 256-265, 2019
High reversibility of lattice oxygen redox quantified by direct bulk probes of both anionic and cationic redox reactions
K Dai, J Wu, Z Zhuo, Q Li, S Sallis, J Mao, G Ai, C Sun, Z Li, WE Gent, ...
Joule 3 (2), 518-541, 2019
Persistent State‐of‐Charge Heterogeneity in Relaxed, Partially Charged Li1−xNi1/3Co1/3Mn1/3O2 Secondary Particles
WE Gent, Y Li, S Ahn, J Lim, Y Liu, AM Wise, CB Gopal, DN Mueller, ...
Advanced materials 28 (31), 6631-6638, 2016
Fluid-enhanced surface diffusion controls intraparticle phase transformations
Y Li, H Chen, K Lim, HD Deng, J Lim, D Fraggedakis, PM Attia, SC Lee, ...
Nature materials 17 (10), 915-922, 2018
Effects of Particle Size, Electronic Connectivity, and Incoherent Nanoscale Domains on the Sequence of Lithiation in LiFePO4 Porous Electrodes
Y Li, S Meyer, J Lim, SC Lee, WE Gent, S Marchesini, H Krishnan, ...
Advanced Materials 27 (42), 6591-6597, 2015
Dichotomy in the Lithiation Pathway of Ellipsoidal and Platelet LiFePO4 Particles Revealed through Nanoscale Operando State‐of‐Charge Imaging
Y Li, JN Weker, WE Gent, DN Mueller, J Lim, DA Cogswell, T Tyliszczak, ...
Advanced Functional Materials 25 (24), 3677-3687, 2015
Design rules for high-valent redox in intercalation electrodes
WE Gent, II Abate, W Yang, LF Nazar, WC Chueh
Joule 4 (7), 1369-1397, 2020
Persistent and partially mobile oxygen vacancies in Li-rich layered oxides
PM Csernica, SS Kalirai, WE Gent, K Lim, YS Yu, Y Liu, SJ Ahn, E Kaeli, ...
Nature Energy 6 (6), 642-652, 2021
Bayesian learning for rapid prediction of lithium-ion battery-cycling protocols
B Jiang, WE Gent, F Mohr, S Das, MD Berliner, M Forsuelo, H Zhao, ...
Joule 5 (12), 3187-3203, 2021
Fingerprint oxygen redox reactions in batteries through high-efficiency mapping of resonant inelastic X-ray scattering
J Wu, Q Li, S Sallis, Z Zhuo, WE Gent, WC Chueh, S Yan, Y Chuang, ...
Condensed Matter 4 (1), 5, 2019
BEEP: A python library for battery evaluation and early prediction
P Herring, CB Gopal, M Aykol, JH Montoya, A Anapolsky, PM Attia, ...
SoftwareX 11, 100506, 2020
The predicted persistence of cobalt in lithium-ion batteries
WE Gent, GM Busse, KZ House
Nature Energy 7 (12), 1132-1143, 2022
Coulombically-stabilized oxygen hole polarons enable fully reversible oxygen redox
II Abate, CD Pemmaraju, SY Kim, KH Hsu, S Sainio, B Moritz, J Vinson, ...
Energy & Environmental Science 14 (9), 4858-4867, 2021
The materials research platform: defining the requirements from user stories
M Aykol, JS Hummelshøj, A Anapolsky, K Aoyagi, MZ Bazant, T Bligaard, ...
Matter 1 (6), 1433-1438, 2019
Electrode Lithiation: Effects of Particle Size, Electronic Connectivity, and Incoherent Nanoscale Domains on the Sequence of Lithiation in LiFePO4Porous Electrodes (Adv. Mater …
Y Li, S Meyer, J Lim, SC Lee, WE Gent, S Marchesini, H Krishnan, ...
Advanced Materials 27 (42), 6590-6590, 2015
Interpretable Data-Driven Modeling Reveals Complexity of Battery Aging
B van Vlijmen, V Lam, PA Asinger, X Cui, D Ganapathi, S Sun, PK Herring, ...
Systems and methods for predicting battery life using data from a diagnostic cycle
WC Chueh, B Van Vlijmen, WE Gent, LAM Vivek, PK Herring, CB Gopal, ...
US Patent 11,768,249, 2023
Understanding Chemomechanical Li-ion Cathode Degradation through Multi-Scale, Multi-Modal X-ray Spectromicroscopy
S Kalirai, K Lim, B Enders, J Hong, WE Gent, A Deva, ER Garcia, YS Yu, ...
Microscopy and Microanalysis 24 (S2), 426-427, 2018
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