4.7 Article

Mg2+ ion-powered hybrid supercapacitor with β-MnO2 as a cathode and α-Fe2O3 as an anode

期刊

JOURNAL OF ENERGY STORAGE
卷 50, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.est.2022.104525

关键词

Hybrid supercapacitor; Magnesium ion-based electrolyte; alpha-Fe2O3; beta-MnO2

资金

  1. National Research Council of Thailand (NRCT) [N41A640095]
  2. Center of Excellence for Innovation in Chemistry (PERCH-CIC) , Ministry of Higher Education, Science, Research and Innovation, Thailand
  3. Mahidol University Frontier Research Facility (MU-FRF)

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Researchers have developed a high-performance hybrid supercapacitor using aqueous magnesium-ion-based electrodes, which exhibit excellent specific capacitance and cycling stability. The use of magnesium ions as a replacement for commercial electrochemical supercapacitors overcomes issues such as high cost, toxicity, and inadequate energy density at high power density.
Commercial electrochemical supercapacitors are expensive, toxic, and have inadequate energy density at a high power density. To overcome above complications, researchers are focusing on aqueous magnesium-ion-based supercapacitors via bivalent Mg2+ ions. Herein, the facile hydrothermal method was employed for the synthesis of the beta-MnO2 and alpha-Fe(2)O(3 )electrodes, which are confirmed by X-ray diffraction (XRD) and X-ray photoelectron spectroscopic (XPS) techniques. We fabricated a Mg2+ -based hybrid supercapacitor (Mg-HSC) with beta-MnO2 as a cathode, alpha-Fe2O3 as an anode, and 1 M MgSO4 as an electrolyte; beta-MnO2 exhibited a specific capacitance of 1867 F/g while alpha-Fe2O3 showed 1896 F/g. The good performance is attributed to small ions of Mg2+ and its bivalent nature. The Mg-HSC exhibited excellent specific capacitance of 230.0 F/g at 1 A/g current density in a wide voltage range of 0 to 1.7 V. The Mg-HSC showed 82.1 Wh/kg energy density at 6153.8 W/kg power density. Moreover, this configured device showed superior long-term cycling stability with capacitance retention of >96.2% over 5000 cycles at 15 A/g current density. The facile synthesis method of electrode materials and the bivalent MgSO4 yield into the high-performance hybrid supercapacitor which can compete with current electrochemical energy storage devices.

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