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Freestanding 1T-Mnx Mo1- x S2- y Sey and MoFe2 S4- z Sez Ultrathin Nanosheet-Structured Electrodes for Highly Efficient Flexible Solid-State Asymmetric Supercapacitors.

Uday Narayan PanVikas SharmaTolendra KshetriThangjam Ibomcha SinghDasu Ram PaudelNam Hoon KimJoong Hee Lee
Published in: Small (Weinheim an der Bergstrasse, Germany) (2020)
Fabrication of hierarchical nanosheet arrays of 1T phase of transition-metal dichalcogenides is indeed a critical task, but it holds immense potential for energy storage. A single-step strategy is employed for the fabrication of stable 1T-Mnx Mo1- x S2- y Sey and MoFe2 S4- z Sez hierarchical nanosheet arrays on carbon cloth as positive and negative electrodes, respectively. The flexible asymmetric supercapacitor constructed with these two electrodes exhibits an excellent electrochemical performance (energy density of ≈69 Wh kg-1  at a power density of 0.985 kW kg-1 ) with ultralong cyclic stability of ≈83.5% capacity retention, after 10 000 consecutive cycles. Co-doping of the metal and nonmetal boosts the charge storage ability of the transition-metal chalcogenides following enrichment in the metallic 1T phase, improvement in the surface area, and expansion in the interlayer spacing in tandem, which is the key focus of the present study. This study explicitly demonstrates the exponential enhancement of specific capacity of MoS2 following intercalation and doping of Mn and Se, and Fe2 S3 following doping of Mo and Se could be an ideal direction for the fabrication of novel energy-storage materials with high-energy storage ability.
Keyphrases
  • solid state
  • transition metal
  • highly efficient
  • reduced graphene oxide
  • gold nanoparticles
  • wastewater treatment
  • low cost
  • human health
  • ionic liquid
  • solar cells