Browsing by Titles

Showing results 1 to 11 of 11

  • 2025-04
  • Lee, Hyeonjun. (2025-04). Combined Displacement/Intercalation Mechanism of Ag0.33V2O5 Cathode for Rechargeable Zinc-Ion Batteries. Energy Technology, 13(4). doi: 10.1002/ente.202401729
  • Wiley
  • View : 188
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Enhanced Structural Transformation Enabled by Low-Crystalline Vanadium Oxides in Aqueous Zinc-Ion Batteries

  • Lee, Hyeonjun
  • Lee, Hyungjin
  • Lee, Sangki
  • Lim, Hyojun
  • Hong, Seung-Tae
  • Kim, Hyung Do
  • Chae, Munseok S.
  • 2025-11
  • Battery Energy, v.4, no.6
  • Wiley
  • View : 3550
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  • Baek, Seunghyeop
  • Setiawan, Dedy
  • Lee, Hyeonjun
  • Lee, Sangki
  • Pyun, Jangwook
  • Hong, Seung-Tae
  • Chae, Munseok S.
  • 2025-07
  • Advanced Science, v.12, no.26
  • Wiley
  • View : 104
  • Download : 0

Magnesium alloys as alternative anode materials for rechargeable magnesium-ion batteries: Review on the alloying phase and reaction mechanisms

  • Setiawan, Dedy
  • Lee, Hyeonjun
  • Pyun, Jangwook
  • Nimkar, Amey
  • Shpigel, Netanel
  • Sharon, Daniel
  • Hong, Seung-Tae
  • Aurbach, Doron
  • Chae, Munseok S.
  • 2024-09
  • Journal of Magnesium and Alloys, v.12, no.9, pp.3476 - 3490
  • Elsevier
  • View : 220
  • Download : 63

Monoclinic Silver Vanadate (Ag0.33V2O5) as a High-Capacity Stable Cathode Material for Aqueous Manganese Batteries

  • Lee, Hyeonjun
  • Lee, Hyungjin
  • Pyun, Jangwook
  • Hong, Seung-Tae
  • Chae, Munseok S.
  • 2024-10
  • Lee, Hyeonjun. (2024-10). Monoclinic Silver Vanadate (Ag0.33V2O5) as a High-Capacity Stable Cathode Material for Aqueous Manganese Batteries. Advanced Science, 11(39). doi: 10.1002/advs.202406642
  • Wiley
  • View : 138
  • Download : 35

New Mn Electrochemistry for Rechargeable Aqueous Batteries: Promising Directions Based on Preliminary Results

  • Lee, Hyungjin
  • Nimkar, Amey
  • Lee, Hyeonjun
  • Shpigel, Netanel
  • Sharon, Daniel
  • Hong, Seung-Tae
  • Chae, Munseok S.
  • 2025-03
  • Lee, Hyungjin. (2025-03). New Mn Electrochemistry for Rechargeable Aqueous Batteries: Promising Directions Based on Preliminary Results. Energy & Environmental Materials, 8(2). doi: 10.1002/eem2.12823
  • Wiley
  • View : 103
  • Download : 18
  • Lee, Sangki
  • Lee, Hyungjin
  • Lee, Hyeonjun
  • Baek, Seunghyeop
  • Shpigel, Netanel
  • Sharon, Daniel
  • Hong, Seung-Tae
  • Chae, Munseok S.
  • 2025-09
  • Energy & Environmental Materials, v.8, no.5
  • Wiley
  • View : 111
  • Download : 0
  • Pyun, Jangwook
  • Lee, Hyungjin
  • Lee, Hyeonjun
  • Lee, Sangki
  • Baek, Seunghyeop
  • Hong, Seung-Tae
  • Kim, Hyung Do
  • Chae, Munseok S.
  • 2025-07
  • Small, v.21, no.29
  • Wiley
  • View : 91
  • Download : 0
  • Pyun, Jangwook
  • Lee, Hyungjin
  • Lee, Hyeonjun
  • Lee, Sangki
  • Baek, Seunghyeop
  • Kwon, Hyeju
  • Hong, Seung-Tae
  • Chae, Munseok S.
  • 2025-05
  • Advanced Science, v.12, no.19
  • Wiley
  • View : 105
  • Download : 0
  • Lee, Hyeonjun
  • Lee, Hyungjin
  • Baek, Seunghyeop
  • Lee, Sangki
  • Pyun, Jangwook
  • Hong, Seung-Tae
  • Chae, Munseok S.
  • 2024-09
  • Lee, Hyeonjun. (2024-09). Unlocking zinc storage in silver vanadate structures for high-performance aqueous zinc batteries. Journal of Power Sources, 613. doi: 10.1016/j.jpowsour.2024.234931
  • Elsevier
  • View : 83
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  • Pyun, Jangwook
  • Lee, Hyungjin
  • Lee, Hyeonjun
  • Kwon, Hyeju
  • Lee, Hyeongseok
  • Hong, Seung-Tae
  • Lee, Woo-Jae
  • Chae, Munseok S.
  • 2025-08
  • Small, v.21, no.31
  • Wiley
  • View : 93
  • Download : 0
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