4.7 Article

MnO2-decorated metallic framework supercapacitors fabricated from duplex-phase FeCrCoMnNiAl0.75 Cantor high entropy alloy precursors through selective phase dissolution

Journal

JOURNAL OF ALLOYS AND COMPOUNDS
Volume 870, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.jallcom.2021.159523

Keywords

FeCrCoMnNiAl0.75 Cantor high entropy alloy; Duplex-phase microstructure; Selective phase dissolution; Metallic framework; MnO2 electrodeposition; Supercapacitor

Funding

  1. Jiangsu Collaborative Innovation Center for Advanced Inorganic Function Composites, State Key Lab of Advanced Metals and Materials [2018-ZD04]
  2. State Key Laboratory of Metal Material for Marine Equipment and Application [SKLMEA-K201806]
  3. Priority Academic Program Development of Jiangsu Higher Education Institution (PAPD)
  4. Natural Science Foundation of China [51671106, 51931008]
  5. Natural Science Foundation of Jiangsu Province [BK20171424, BE2019119]
  6. National Defense Basic Scientific Research Program of China [JCKY08414C020]

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HEA metallic frameworks were fabricated through selective phase dissolution of FeCrCoMnNiAl0.75 HEAs precursors, inheriting microstructural characteristics of Cantor HEAs. MnO2-decorated MnO2/MF composite electrodes exhibited high specific capacitance, enhancing the capacitance performance of MnO2 in supercapacitors.
To exploit functional applications of high entropy alloys (HEAs), HEA metallic frameworks (MFs) have been fabricated through selective phase dissolution of fcc and bcc duplex-phase FeCrCoMnNiAl0.75 HEAs precursors in H2SO4. Preferential dissolution of less-noble cubic fcc phases leads to the formation of three dimensional continuously-distributed residual bcc-phase MFs with wall thickness of 31-45 nm and the regular cubic voids with an average size of 121-150 nm similar with cubic fcc phases in size. Microstructural inheritance of Cantor HEAs governs the formation of MFs. MnO2-decorated HEA metallic framework (MnO2/MF) have been fabricated by electrodepositing MnO2 thin layers on MFs with average thickness of about 9 nm. The MnO2 layers-decorated MnO2/MF composite electrodes can fulfill the high specific capacitance of 961 F g(-1), close to the theoretical value, due to the large specific surface area and superior electronic conductivity. Enhanced capacitive performances may result from the fast ion/electron transports between the active MnO2 and the electrolytes. The results suggest that the uniform MF composite electrodes are capable for improving capacitance performance of MnO2 in supercapacitors. (c) 2021 Elsevier B.V. All rights reserved.

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