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Showing results 1 to 15 of 15

Acrylate-based Gel Polymer Electrolyte Exhibiting Better Rate Performance than Liquid Electrolyte

  • Kim, Dong Hui
  • 2013
  • Kim, Dong Hui. (2013). Acrylate-based Gel Polymer Electrolyte Exhibiting Better Rate Performance than Liquid Electrolyte. doi: 10.22677/thesis.2262494
  • DGIST
  • View : 705
  • Download : 869

Continuum insight into the effects of electrode design parameters on the electrochemical performance of lithium-ion batteries

  • Appiah, Williams Agyei
  • Kim, Dohwan
  • Lee, Yong Min
  • Garcia-Lastra, Juan Maria
  • Castelli, Ivano E.
  • 2024-08
  • Appiah, Williams Agyei. (2024-08). Continuum insight into the effects of electrode design parameters on the electrochemical performance of lithium-ion batteries. Electrochimica Acta, 494. doi: 10.1016/j.electacta.2024.144470
  • Elsevier
  • View : 243
  • Download : 61

Development of Electrolytes for Improving Electrochemical Performances of High-voltage LiNi0.5Mn1.5O4.

  • Nam, Ye Seol
  • 2017
  • Nam, Ye Seol. (2017). Development of Electrolytes for Improving Electrochemical Performances of High-voltage LiNi0.5Mn1.5O4. doi: 10.22677/THESIS.2326903
  • DGIST
  • View : 1331
  • Download : 846
  • Lee, Mingyu
  • Shin, Yewon
  • Chang, Hongjun
  • Jin, Dahee
  • Lee, Hyuntae
  • Lim, Minhong
  • Seo, Jiyeon
  • Band, Tino
  • Kaufmann, Kai
  • Moon, Janghyuk
  • et al
  • 2023-11
  • Lee, Mingyu. (2023-11). Diagnosis of Current Flow Patterns Inside Fault-Simulated Li-Ion Batteries via Non-Invasive, In Operando Magnetic Field Imaging. Small Methods, 7(11). doi: 10.1002/smtd.202300748
  • Wiley
  • View : 541
  • Download : 0

Effects of alkali carbonate additives and solvent composition on the electrochemical performances of LiNi0.5Mn1.5O4 cathode for lithium-ion batteries

  • Son, Jung Su
  • 2015
  • Son, Jung Su. (2015). Effects of alkali carbonate additives and solvent composition on the electrochemical performances of LiNi0.5Mn1.5O4 cathode for lithium-ion batteries. doi: 10.22677/thesis.2067777
  • DGIST
  • View : 1013
  • Download : 429
  • Kang, Sung-Jin
  • Yu, Sunghun
  • Lee, Chulhaeng
  • Yang, Dookyong
  • Lee, Hochun
  • 2014-09-20
  • Kang, Sung-Jin. (2014-09-20). Effects of electrolyte-volume-to-electrode-area ratio on redox behaviors of graphite anodes for lithium-ion batteries. Electrochimica Acta, 141, 367–373. doi: 10.1016/j.electacta.2014.07.090
  • Elsevier Ltd
  • View : 880
  • Download : 0
  • De Pham-Cong
  • Kim, Jae-Hyun
  • Jeong, Se-Young
  • Choi, Jun Hee
  • Kim, Jinwoo
  • Cho, Chae-Ryong
  • 2015-11
  • Electrochemistry Communications, v.60, pp.204 - 207
  • Elsevier
  • View : 1081
  • Download : 0
  • Kang, Joonhee
  • Chung, Habin
  • Doh, Chilhoon
  • Kang, Byoungwoo
  • Han, Byungchan
  • 2015-10-20
  • Kang, Joonhee. (2015-10-20). Integrated study of first principles calculations and experimental measurements for Li-ionic conductivity in Al-doped solid-state LiGe2(PO4)(3) electrolyte. Journal of Power Sources, 293, 11–16. doi: 10.1016/j.jpowsour.2015.05.060
  • Elsevier B.V.
  • View : 1245
  • Download : 0

Investigations on Interfacial Reactions of Electro-lytes on Carboneous and Magnesium Anodes for Rechargeable Lithium and Magnesium Batteries

  • Kang, Sung Jin
  • 2014
  • Kang, Sung Jin. (2014). Investigations on Interfacial Reactions of Electro-lytes on Carboneous and Magnesium Anodes for Rechargeable Lithium and Magnesium Batteries. doi: 10.22677/thesis.2262534
  • DGIST
  • View : 916
  • Download : 437
  • Minsang Jo
  • 2023
  • Minsang Jo. (2023). Investigations on Surface Properties and Novel Electrolyte Additive Development for Lithium-Ion Battery Anodes Based on Graphite and Silicon. doi: 10.22677/THESIS.200000688104
  • DGIST
  • View : 234
  • Download : 0
  • Yoon, Sujin
  • Kim, Hyemi
  • Cho, Jeong-Ju
  • Han, Young-Kyu
  • Lee, Hochun
  • 2013-12-15
  • Yoon, Sujin. (2013-12-15). Lactam derivatives as solid electrolyte interphase forming additives for a graphite anode of lithium-ion batteries. Journal of Power Sources, 244, 711–715. doi: 10.1016/j.jpowsour.2012.11.115
  • Elsevier B.V.
  • View : 818
  • Download : 0
  • Choi, Taejin
  • Kim, Seong Dae
  • Yeo, Seungmin
  • Cheon, Taehoon
  • Kim, Soo-Hyun
  • Ahn, Jong-Hyun
  • Kim, Hyungjun
  • 2020-02
  • Choi, Taejin. (2020-02). Rate performance enhancement of lithium-ion battery using precise thickness-controllable-carbon-coated titanium dioxide nanowire array electrode via atomic layer deposition. Electrochimica Acta, 334, 135596. doi: 10.1016/j.electacta.2019.135596
  • Pergamon Press Ltd.
  • View : 719
  • Download : 0
  • Kim, Ilgyu
  • Choi, Jae Hong
  • Jang, Hangeol
  • Kim, Na Yeong
  • Park, Jeong-Ho
  • Lee, Ho-Jin
  • Cheon, Se-Hwa
  • Oh, Eun-Suok
  • Yoon, Ki Ro
  • Kim, Jinsoo
  • et al
  • 2025-04
  • Kim, Ilgyu. (2025-04). Troubleshooting Carbon Nanotube Bundling Using Electrostatic Energy-Driven Dispersion for LiFePO4 Bimodal Thick Electrode in Lithium-Ion Batteries. ACS Nano, 19(16), 15941–15952. doi: 10.1021/acsnano.5c01892
  • American Chemical Society
  • View : 252
  • Download : 0
  • Kang, Sung Jin
  • Park, Ki Sung
  • Park, Seong Hyo
  • Lee, Ho Chun
  • 2018-01
  • Kang, Sung Jin. (2018-01). Unraveling the role of LiFSI electrolyte in the superior performance of graphite anodes for Li-ion batteries. doi: 10.1016/j.electacta.2017.11.018
  • Pergamon Press Ltd.
  • View : 918
  • Download : 0
  • Yewon Shin
  • 2023
  • Yewon Shin. (2023). Visualization of Current Flow Patterns for Li-ion Battery Fault Diagnosis via Magnetic Field Imaging. doi: 10.22677/THESIS.200000658038
  • DGIST
  • View : 259
  • Download : 0
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