Valid design and evaluation of cathode and anode materials of aqueous zinc ion batteries with high-rate capability and cycle stability

  • Lee, Se Hun; 
  • Han, Juyeon; 
  • Cho, Tae Woong; 
  • Kim, Gyung Hyun; 
  • Yoo, Young Joon; 
  • ... Yoo, Jeeyoung; 
  • 외 7명
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초록

Although non-aqueous lithium-ion batteries have a high gravimetric density, aqueous zinc-ion batteries (ZIBs) have recently been in the spotlight as an alternative, because ZIBs have characteristics such as high volumetric density, high ionic conductivity, eco-friendliness, low cost, and high safety. However, the improvement in electrochemical performance is limited due to insufficient rate capability and severe cycle fading of the vanadium-oxide-based cathode and zinc-metal-based anode material, which are frequently used as active materials for ZIBs. In addition, complex methods are required to prepare high-performance cathode and anode materials. Therefore, a simple yet effective strategy is needed to obtain high-performance anodes and cathodes. Herein, an ammonium vanadate nanofiber (AVNF) intercalated with NH4+ and H2O as a cathode material for ZIBs was synthesized within 30 minutes through a facile sonochemical method. In addition, an effective Al2O3 layer of 9.9 nm was coated on the surface of zinc foil through an atomic layer deposition technique. As a result, AVNF//60Al(2)O(3)@Zn batteries showed a high rate capability of 108 mA h g(-1) even at 20 A g(-1), and exhibited ultra-high cycle stability with a capacity retention of 94% even after 5000 cycles at a current density of 10 A g(-1).

키워드

RECENT PROGRESS; METAL ANODES; LIFE
제목
Valid design and evaluation of cathode and anode materials of aqueous zinc ion batteries with high-rate capability and cycle stability
저자
Lee, Se Hun; Han, Juyeon; Cho, Tae Woong; Kim, Gyung Hyun; Yoo, Young Joon; Park, JuSang; Kim, Young Jun; Lee, Eun Jung; Lee, Sihyun; Mhin, Sungwook; Park, Sang Yoon; Yoo, Jeeyoung; Lee, Sang-Hwa
DOI
10.1039/d2nr06372g
발행일
2023-02-23
유형
Article
저널명
Nanoscale
권
15
호
8
페이지
3737 ~ 3748