1. Journal Articles92

Showing results 81 to 92 of 92

  • 2013-01
  • Jung, Young Hwa. (2013-01). Electrochemical Sodium Ion Intercalation Properties of Na2.7Ru4O9 in Nonaqueous and Aqueous Electrolytes. Journal of the Electrochemical Society, 160(6), A897–A900. doi: 10.1149/2.113306jes
  • Electrochemical Society
  • View : 912
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  • Kang, Sung-Jin
  • Lim, Sung-Chul
  • Kim, Hyeonji
  • Heo, Jongwook W.
  • Hwang, Sunwook
  • Jang, Minchul
  • Yang, Dookyong
  • Hong, Seung-Tae
  • Lee, Hochun
  • 2017-04
  • Kang, Sung-Jin. (2017-04). Non-Grignard and Lewis Acid-Free Sulfone Electrolytes for Rechargeable Magnesium Batteries. Chemistry of Materials, 29(7), 3174–3180. doi: 10.1021/acs.chemmater.7b00248
  • American Chemical Society
  • View : 1235
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  • 2017-07
  • Lim, Sung-Chul. (2017-07). Unraveling the Magnesium-Ion Intercalation Mechanism in Vanadium Pentoxide in a Wet Organic Electrolyte by Structural Determination. Inorganic Chemistry, 56(14), 7668–7678. doi: 10.1021/acs.inorgchem.7b00204
  • American Chemical Society
  • View : 1040
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  • 2017-09
  • Chae, Mun-Seok. (2017-09). Potassium nickel hexacyanoferrate as a high-voltage cathode material for nonaqueous magnesium-ion batteries. Journal of Power Sources, 363, 269–276. doi: 10.1016/j.jpowsour.2017.07.094
  • Elsevier B.V.
  • View : 1011
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  • Heo, Jong Wook
  • Banerjee, Abhik
  • Park, Kern Ho
  • Jung, Yoon Seok
  • Hong, Seung Tae
  • 2018-04
  • Heo, Jong Wook. (2018-04). New Na-Ion Solid Electrolytes Na4-xSn1-xSbxS4 (0.02 x 0.33) for All-Solid-State Na-Ion Batteries. Advanced Energy Materials, 8(11). doi: 10.1002/aenm.201702716
  • Wiley-VCH Verlag
  • View : 1066
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  • Banerjee, Abhik
  • Park, Kern Ho
  • Heo, Jongwook W.
  • Nam, Young Jin
  • Moon, Chang Ki
  • Oh, Seung M.
  • Hong, Seung-Tae
  • Jung, Yoon Seok
  • 2016-08
  • Banerjee, Abhik. (2016-08). Na3SbS4: A Solution Processable Sodium Superionic Conductor for All-Solid-State Sodium-Ion Batteries. Angewandte Chemie - International Edition, 55(33), 9633–9637. doi: 10.1002/anie.201604158
  • Wiley-VCH Verlag
  • View : 1642
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  • 2015-06
  • Son, Jung Su. (2015-06). Crystal structure of catena-poly[[[diaquacobalt(II)]-bis(Pi-hex-3-enedinitrile-Kappa 2N:N')] bis(tetrafluoridoborate)]. Acta Crystallographica Section E: Crystallographic Communications, 71, m135–m136. doi: 10.1107/S2056989015009548
  • International Union of Crystallography
  • View : 786
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Crystal structure of barium perchlorate anhydrate, Ba(ClO4)2, from laboratory X-ray powder data

  • Lee, Jeong Hoo H.
  • Kang, Ji Hoon
  • Lim, Sung Chul
  • Hong, Seung Tae
  • 2015-06
  • Lee, Jeong Hoo H. (2015-06). Crystal structure of barium perchlorate anhydrate, Ba(ClO4)2, from laboratory X-ray powder data. Acta Crystallographica Section E: Crystallographic Communications, 71, 588–591. doi: 10.1107/S2056989015008828
  • International Union of Crystallography
  • View : 944
  • Download : 28
  • 2017-01
  • Chae, Munseok S. (2017-01). Organic electrolyte-based rechargeable zinc-ion batteries using potassium nickel hexacyanoferrate as a cathode material. Journal of Power Sources, 337, 204–211. doi: 10.1016/j.jpowsour.2016.10.083
  • Elsevier B.V.
  • View : 1503
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  • 2013-07
  • Jung, Young Hwa. (2013-07). Synthesis, structure, and electrochemical Li-ion intercalation of LiRu2O4 with CaFe2O4-type structure. Journal of Power Sources, 233, 285–289. doi: 10.1016/j.jpowsour.2013.01.119
  • Elsevier B.V.
  • View : 965
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  • Chae, Munseok S.
  • Heo, Jongwook W.
  • Lim, Sung-Chul
  • Hong, Seung-Tae
  • 2016-04
  • Chae, Munseok S. (2016-04). Electrochemical Zinc-Ion Intercalation Properties and Crystal Structures of ZnMo6S8 and Zn2Mo6S8 Chevrel Phases in Aqueous Electrolytes. Inorganic Chemistry, 55(7), 3294–3301. doi: 10.1021/acs.inorgchem.5b02362
  • American Chemical Society
  • View : 1119
  • Download : 0
  • 2016-09
  • Cui, Wei. (2016-09). Lithium ion solvation by ethylene carbonates in lithium-ion battery electrolytes, revisited by density functional theory with the hybrid solvation model and free energy correction in solution. Physical Chemistry Chemical Physics, 18(34), 23607–23612. doi: 10.1039/c6cp01667g
  • Royal Society of Chemistry
  • View : 1213
  • Download : 0
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