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Sparked Reduced Graphene Oxide for Low-Temperature Sodium-Beta Alumina Batteries.
Jin, Dana; Lee, Hae Gon; Choi, Sangjin; Kim, Sungsoon; Lee, Younki; Son, Sori; Park, Yoon-Cheol; Lee, Joon Sang; Jung, Keeyoung; Shim, Wooyoung.
Afiliación
  • Jin D; Department of Materials Science and Engineering , Yonsei University , Seoul 03722 , Korea.
  • Lee HG; Center for Multi-Dimensional Materials , Yonsei University , Seoul 03722 , Korea.
  • Choi S; Department of Mechanical Engineering , Yonsei University , Seoul 03722 , Korea.
  • Kim S; Department of Materials Science and Engineering , Yonsei University , Seoul 03722 , Korea.
  • Lee Y; Center for Multi-Dimensional Materials , Yonsei University , Seoul 03722 , Korea.
  • Son S; Department of Materials Science and Engineering , Yonsei University , Seoul 03722 , Korea.
  • Park YC; Center for Multi-Dimensional Materials , Yonsei University , Seoul 03722 , Korea.
  • Lee JS; Department of Materials Engineering and Convergence Technology , Gyeongsang National University , Jinju 52828 , Korea.
  • Jung K; Materials Research Division , Research Institute of Industrial Science & Technology , Pohang 37673 , Korea.
  • Shim W; Materials Research Division , Research Institute of Industrial Science & Technology , Pohang 37673 , Korea.
Nano Lett ; 19(12): 8811-8820, 2019 12 11.
Article en En | MEDLINE | ID: mdl-31771329
ABSTRACT
Wetting Na metal on the solid electrolyte of a liquid Na battery determines the operating temperature and performance of the battery. At low temperatures below 200 °C, liquid Na wets poorly on a solid electrolyte near its melting temperature (Tm = 98 °C), limiting its suitability for use in low-temperature batteries used for large-scale energy-storage systems. Herein, we propose the use of sparked reduced graphene oxide (rGO) that can improve the Na wetting in sodium-beta alumina batteries (NBBs), allowing operation at lower temperatures. Experimental and computational studies indicated rGO layers with nanogaps exhibited complete liquid Na wetting regardless of the surface energy between the liquid Na and the graphene oxide, which originated from the capillary force in the gap. Employing sparked rGO significantly enhanced the cell performance at 175 °C; the cell retained almost 100% Coulombic efficiency after the initial cycle, which is a substantial improvement over cells without sparked rGO. These results suggest that coating sparked rGO is a promising but simple strategy for the development of low-temperature NBBs.
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Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Nano Lett Año: 2019 Tipo del documento: Article

Texto completo: 1 Colección: 01-internacional Banco de datos: MEDLINE Idioma: En Revista: Nano Lett Año: 2019 Tipo del documento: Article