<p>Inspired by the recycling approach of electronic waste, within this research paper, we extracted exhausted materials from spent primary zinc batteries and then annealed them in a modified condition, forming a ZnMn<sub>2</sub>O<sub>4</sub>/C composite with a uniform nanoparticles’ porous morphology. The produced material has been examined as a supercapacitor active one, which showed promising electrochemical properties for supercapacitor application. At a current density of 3&#xa0;A&#xa0;g<sup>−1</sup>, it exerted a comparatively significant capacitance of 1696.88&#xa0;F&#xa0;g<sup>−1</sup> along with a capacity of 807&#xa0;C&#xa0;g<sup>−1</sup>. Furthermore, the fabrication of a flexible all-solid-state symmetric supercapacitor prototype&#xa0;has been accomplished. It exhibited promising initial results that carried a specific energy of 76.75&#xa0;Wh&#xa0;kg<sup>−1</sup> at a specific power of 333.86&#xa0;W&#xa0;kg<sup>−1</sup>. After 3000 cycles, it maintained an acceptable capacity. Thus, this eco-friendly approach can successfully convert the spent battery material to new value-added materials for supercapacitors in the clean energy area.</p>

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Spent zinc batteries: a pathway to Sustainable ZnMn2O4/C supercapacitors electrode

  • Aya Mohamed Abuelftooh,
  • S. S. Mahmoud,
  • S. Y. Ahmed,
  • Sayed Y. Attia,
  • Saad G. Mohamed

摘要

Inspired by the recycling approach of electronic waste, within this research paper, we extracted exhausted materials from spent primary zinc batteries and then annealed them in a modified condition, forming a ZnMn2O4/C composite with a uniform nanoparticles’ porous morphology. The produced material has been examined as a supercapacitor active one, which showed promising electrochemical properties for supercapacitor application. At a current density of 3 A g−1, it exerted a comparatively significant capacitance of 1696.88 F g−1 along with a capacity of 807 C g−1. Furthermore, the fabrication of a flexible all-solid-state symmetric supercapacitor prototype has been accomplished. It exhibited promising initial results that carried a specific energy of 76.75 Wh kg−1 at a specific power of 333.86 W kg−1. After 3000 cycles, it maintained an acceptable capacity. Thus, this eco-friendly approach can successfully convert the spent battery material to new value-added materials for supercapacitors in the clean energy area.