하이브리드 슈퍼커패시터의 음극 및 양극 설계에 따른 전기화학적 거동open accessElectrochemical Behavior Depending on Designed-Anode and Cathodes of Hybrid Supercapacitors
- Other Titles
- Electrochemical Behavior Depending on Designed-Anode and Cathodes of Hybrid Supercapacitors
- Authors
- Shin, Seung-Il; Lee, Byung-Gwan; Ha, Min-Woo; An, Geon-Hyoung
- Issue Date
- Dec-2019
- Publisher
- 한국재료학회
- Keywords
- energy; energy storage device; supercapacitor; capacity ratio; electrode thickness
- Citation
- Korean Journal of Materials Research, v.29, no.12, pp 774 - 780
- Pages
- 7
- Indexed
- SCOPUS
ESCI
KCI
- Journal Title
- Korean Journal of Materials Research
- Volume
- 29
- Number
- 12
- Start Page
- 774
- End Page
- 780
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/8421
- DOI
- 10.3740/MRSK.2019.29.12.774
- ISSN
- 1225-0562
2287-7258
- Abstract
- The performance of Li-ion hybrid supercapacitors (asymmetric-type) depends on many factors such as the capacity ratio, material properties, cell designs and operating conditions. Among these, in consideration of balanced electrochemical reactions, the capacity ratio of the negative (anode) to positive (cathode) electrode is one of the most important factors to design the Li-ion hybrid supercapacitors for high energy storing performance. We assemble Li-ion hybrid supercapacitors using activated carbon (AC) as anode material, lithium manganese oxide as cathode material, and organic electrolyte (1 mol L-1 LiPF6 in acetonitrile). At this point, the thickness of the anode electrode is controlled at 160, 200, and 240 mu m. Also, thickness of cathode electrode is fixed at 60 mu m. Then, the effect of negative and positive electrode ratio on the electrochemical performance of AC/LiMn2O4 Li-ion hybrid supercapacitors is investigated, especially in the terms of capacity and cyclability at high current density. In this study, we demonstrate the relationship of capacity ratio between anode and cathode electrode, and the excellent electrochemical performance of AC/LiMn2O4 Li-ion hybrid supercapacitors. The remarkable capability of these materials proves that manipulation of the capacity ratio is a promising technology for high-performance Li-ion hybrid supercapacitors.
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