Login / Signup

Single-Atomic Dispersion of Fe and Co Supported on Reduced Graphene Oxide for High-Performance Lithium-Sulfur Batteries.

Sajad RahimiLorenzo StievanoLaetitia DubauCristina IojoiuLauréline LecarmeFannie Alloin
Published in: ACS applied materials & interfaces (2023)
High theoretical energy density and low cost make lithium-sulfur (LSB) batteries a promising system for next-generation energy storage. LSB performance largely depends on efficient reversible conversion of elemental sulfur to Li 2 S. Here, well-designed sulfur host materials including Fe or Co single atoms embedded on N-doped reduced graphene oxide (MNC/G with M = Fe or Co) are proposed to tackle the LSB challenges and enhance the electrochemical performance. Using a combination of Mössbauer spectroscopy and high-resolution scanning electron microscopy, the atomic dispersion of Co and Fe was revealed up to relatively high mass loadings. After optimization of the electrolyte/sulfur (E/S) ratio, FeNC/G shows the most promising cycle performance combining a constant high discharge capacity at low E/S values with the lowest polarization. In particular, the material FeNC/G@S with a high sulfur loading (9.4 mg cm -2 ) delivers a high area capacity of 7.7 mAh cm -2 under lean electrolyte conditions (6 mL g -1 ).
Keyphrases
  • reduced graphene oxide
  • solid state
  • high resolution
  • electron microscopy
  • gold nanoparticles
  • low cost
  • metal organic framework
  • ionic liquid
  • quantum dots
  • mass spectrometry
  • body composition
  • postmenopausal women