Zhijia Du
Oak Ridge National Laboratory
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Publication
Featured researches published by Zhijia Du.
Journal of Applied Electrochemistry | 2017
Zhijia Du; David L. Wood; Claus Daniel; Sergiy Kalnaus; Jianlin Li
Increasing electrode thickness, thus increasing the volume ratio of active materials, is one effective method to enable the development of high energy density Li-ion batteries. In this study, an energy density versus power density optimization of LiNi0.8Co0.15Al0.05O2 (NCA)/graphite cell stack was conducted via mathematical modeling. The energy density was found to have a maximum point versus electrode thickness (critical thickness) at given discharging C rates. The physics-based factors that limit the energy/power density of thick electrodes were found to be increased cell polarization and underutilization of active materials. The latter is affected by Li-ion diffusion in active materials and Li-ion depletion in the electrolyte phase. Based on those findings, possible approaches were derived to surmount the limiting factors. The improvement of the energy–power relationship in an 18,650 cell was used to demonstrate how to optimize the thick electrode parameters in cell engineering.Graphical Abstract
ACS Applied Materials & Interfaces | 2018
Peng-Fei Cao; Michael Naguib; Zhijia Du; Eric W. Stacy; Bingrui Li; Tao Hong; Kunyue Xing; Dmitry Voylov; Jianlin Li; David L. Wood; Alexei P. Sokolov; Jagjit Nanda; Tomonori Saito
Although significant progress has been made in improving cycling performance of silicon-based electrodes, few studies have been performed on the architecture effect on polymer binder performance for lithium-ion batteries. A systematic study on the relationship between polymer architectures and binder performance is especially useful in designing synthetic polymer binders. Herein, a graft block copolymer with readily tunable architecture parameters is synthesized and tested as the polymer binder for the high-mass loading silicon (15 wt %)/graphite (73 wt %) composite electrode (active materials >2.5 mg/cm2). With the same chemical composition and functional group ratio, the graft block copolymer reveals improved cycling performance in both capacity retention (495 mAh/g vs 356 mAh/g at 100th cycle) and Coulombic efficiency (90.3% vs 88.1% at first cycle) than the physical mixing of glycol chitosan (GC) and lithium polyacrylate (LiPAA). Galvanostatic results also demonstrate the significant impacts of different architecture parameters of graft copolymers, including grafting density and side chain length, on their ultimate binder performance. By simply changing the side chain length of GC-g-LiPAA, the retaining delithiation capacity after 100 cycles varies from 347 mAh/g to 495 mAh/g.
JOM | 2017
Jianlin Li; Zhijia Du; Rose E. Ruther; Seong Jin An; Lamuel David; Kevin A. Hays; Marissa Wood; Nathan D. Phillip; Yangping Sheng; Chengyu Mao; Sergiy Kalnaus; Claus Daniel; David L. Wood
Journal of Power Sources | 2017
Seong Jin An; Jianlin Li; Zhijia Du; Claus Daniel; David L. Wood
Journal of Power Sources | 2017
Zhijia Du; K.M. Rollag; Jianlin Li; Seong Jin An; Marissa Wood; Yangping Sheng; Partha P. Mukherjee; Claus Daniel; David L. Wood
Journal of The Electrochemical Society | 2016
Zhijia Du; C. J. Janke; Jianlin Li; Claus Daniel; David L. Wood
Journal of Power Sources | 2018
Javier Bareño; Nancy L. Dietz Rago; Fulya Dogan; Donald G. Graczyk; Yifen Tsai; Seema R. Naik; Sang-Don Han; Eungje Lee; Zhijia Du; Yangping Sheng; Jianlin Li; David L. Wood; Leigh Anna Marie Steele; Joshua Lamb; Scott Wilmer Spangler; Christopher Grosso; Kyle R. Fenton; Ira Bloom
Electrochimica Acta | 2017
Zhijia Du; Jianlin Li; Claus Daniel; David L. Wood
Journal of The Electrochemical Society | 2018
Chengyu Mao; Marissa Wood; Lamuel David; Seong Jin An; Yangping Sheng; Zhijia Du; Harry M. Meyer; Rose E. Ruther; David L. Wood
Journal of Power Sources | 2018
Ira Bloom; Javier Bareño; Nancy L. Dietz Rago; Fulya Dogan; Donald G. Graczyk; Yifen Tsai; Seema R. Naik; Sang-Don Han; Eungje Lee; Zhijia Du; Yangping Sheng; Jianlin Li; David L. Wood; Leigh Anna Marie Steele; Joshua Lamb; Scott Wilmer Spangler; Christopher Grosso; Kyle R. Fenton