4V-class Magnesium-ion pseudocapacitors fabricated using an in situ inverse-charging process
- Authors
- Moon, Seongbak; Lee, Eunji; Lee, Jeonghun; Yoon, Juhee; Ha, Son; Choi, Yeonhua; Yeon, Jiyun; Kim, Yongju; Lim, Hyung-Kyu; Jin, Hyoung-Joon; Yun, Young Soo
- Issue Date
- 2023-10
- Publisher
- Elsevier BV
- Citation
- Chemical Engineering Journal, v.473
- Abstract
- Pseudocapacitors can deliver much more improved energy densities than those (<4% of typical lithium-ion batteries) of the electrochemical double layer (EDL) capacitors. Nevertheless, surface-limited redox behaviors based on typical monovalent-ion charge carriers exhibit insufficient energy densities, necessitating a new high-performance electrochemical system based on a feasible cell configuration. In this study, 4 V-class multivalent magnesium-ion pseudocapacitors (MIPs) were fabricated from mass-producible nanocarbon electrodes and a glyme-based electrolyte system via an in situ electrochemical oxidation process. A redox-free nanocarbon electrode was electrochemically tuned into a pseudocapacitive nanocarbon anode (PNA) using a well-controlled oxidation process, showing an approximately four times higher specific capacitance value (similar to 196F g(-1)) compared with its initial EDL capacitance. The dual experimental and theoretical analysis results elucidate that the pseudocapacitance originates from the strong chemisorption ability with divalent magnesium-ions by the concerted effect of surface carbonyl functional groups and topological carbon defects. The high-capacitance PNA can work in a wide voltage range of 4 V. Therefore, the PNA-based MIP showed a high specific energy density of 167 Wh kg(-1), which is much higher than those (46 similar to 145 Wh kg(-1)) of previously reported alkali-ion capacitors. Additionally, a high cycling performance of the MIP full cell was achieved over 5,000 cycles.
- Keywords
- CHEMISTRY; Inverse-charging; In situ fabrication; Magnesium -ion pseudocapacitor; 4V-class supercapacitor; Multivalent-ion hybrid capacitor; Nanocarbon electrode
- ISSN
- 1385-8947
- URI
- https://pubs.kist.re.kr/handle/201004/113225
- DOI
- 10.1016/j.cej.2023.145111
- Appears in Collections:
- KIST Article > 2023
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