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2000
Volume 20, Issue 5
  • ISSN: 1573-4137
  • E-ISSN: 1875-6786

Abstract

Background: To enhance the super capacitive properties of nanocomposites, the effective method is to combine carbon nanospheres with mesoporous structures with Gd3+:α-SbO inorganic nanocomposites (NC) to form hybrid electrodes. An as-prepared hybrid electrode material possesses increased energy density, high rate of reversibility and cyclic stability when incorporated in electrochemical cyclic voltammetric studies. Methods: In the present investigation, various wt % of C-nanospheres (C) (5 %, 10% and 20%) were decorated over Gd3+: α-SbO nanocomposites and were synthesized by coprecipitation method. XRD, SEM, EDX, UV-visible, and XPS are only a few of the analytical techniques used to describe the as-prepared hybrid nanocomposites. Electrochemical cyclic voltammetry was carried out in a 6 M KOH solution, three-electrode system. Results: The crystal structure and morphology of C: Gd3+@ α-SbO NC showed a mixed hexagonal phase and agglomerated tiny irregularly shaped morphology that appeared as the C concentration increased. Redshift in optical absorption peak appeared (near UV-edge), and the optical band gap (E) value increased from 3.53 eV to 3.65 eV. The electrochemical supercapacitor showed the highest specific capacitance of 989 F/g at the current density of 1 A/g for C:Gd3+@α-SbO NC compared with C:Gd3+@α-SbO (x = 5% and 10%) and undoped Gd3+:α-SbO NC. The change in phase angle and R value of 1.98 was attributed to the ideal supercapacitor properties. The cyclic stability after 5000 cycles with 79.71% capacitive retention was exhibited by C:Gd3+@α-SbO NC. Conclusion: The present research introduces ease of synthesis of hybrid electrode materials possessing high active surface area, increased energy density, high cyclic stability, and reversibility in an aqueous solution.

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/content/journals/cnano/10.2174/1573413719666230720161905
2024-09-01
2025-09-09
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  • Article Type:
    Research Article
Keyword(s): Coprecipitation; Cx; energy storage; Gd3+@α-Sb2O4 NC; morphology; Nanocomposites; optical
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