Login / Signup

Manipulating Sulfur Conversion Kinetics through Interfacial Built-In Electric Field Enhanced Bidirectional Mott-Schottky Electrocatalysts in Lithium-Sulfur Batteries.

Guo LiuQi ZengQingfeng WuShuhao TianXiao SunDi WangXijuan LiWei WeiTianyu WuYuhao ZhangYanbin ShengKun TaoErqing XieZhen Xing Zhang
Published in: ACS applied materials & interfaces (2023)
Efficient electrocatalysts and catalytic mechanisms remain a pressing need in Li-S electrochemistry to address lithium polysulfide (LiPS) shuttling and enhance conversion kinetics. This study presents the development of multifunctional VO 2 @rGO heterostructures, incorporating interfacial built-in electric field (BIEF) enhancement, as a Mott-Schottky electrocatalyst for Li-S batteries. Electrochemical experiments and theoretical analysis demonstrate that the interfacial BIEF between VO 2 and rGO induces self-driven charge redistribution, resulting in accelerated charge transport rates, enhanced LiPS chemisorption, reduced energy barriers for Li 2 S nucleation/decomposition, and improved Li-ion diffusion behavior. The Mott-Schottky electrocatalyst, combining the strengths of VO 2 's anchoring ability, rGO's metallic conductivity, and BIEF's optimized charge transport, exhibits an outstanding "trapping-conversion" effect. The modified Li-S battery with a VO 2 @rGO-modified separator achieves a highly reversible capacity of 558.0 mAh g -1 at 2 C over 600 cycles, with an average decay rate of 0.048% per cycle. This research offers valuable insights into the design of Mott-Schottky electrocatalysts and their catalytic mechanisms, advancing high-efficiency Li-S batteries and other multielectron energy storage and conversion devices.
Keyphrases
  • solid state
  • ion batteries
  • reduced graphene oxide
  • ionic liquid
  • high efficiency
  • molecular dynamics simulations
  • gold nanoparticles
  • electron transfer
  • drug delivery
  • high resolution
  • visible light