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Identification of linear scaling relationships in polysulfide conversion on α-In 2 Se 3 -supported single-atom catalysts.

Hui WangLin ZouMin LiLong Zhang
Published in: Physical chemistry chemical physics : PCCP (2023)
Developing highly active single-atom catalysts (SACs) for suppressing the shuttle effect and enhancing the kinetics of polysulfide conversion is regarded as an important approach to improve the performance of Li-S batteries. However, the adsorption behaviors of polysulfides and the catalytic properties of host materials remain obscure due to the lack of mechanistic understanding of the structure-performance relationship. Here, we identify that the adsorption energies of polysulfides on 3d transition-metal atoms supported by two-dimensional α-In 2 Se 3 with downward polarization (TM@In 2 Se 3 ) are highly correlated with the d-band centers of the TM atoms. Introduction of the TM atoms on the α-In 2 Se 3 surface improves the electrical conductivity and meanwhile, significantly enhances the adsorption strength of polysulfides and suppresses the shuttle effect. A mechanistic study of polysulfide conversion on TM@In 2 Se 3 shows that the Li 2 S 2 dissociation is the potential-determining step with low activation energies, indicating that TM@In 2 Se 3 can accelerate the kinetics of polysulfide conversion. Electronic structure analysis shows that the kinetics of the potential-determining step on TM@In 2 Se 3 is related to the TM-S interaction in Li 2 S 2 -adsorbed TM@In 2 Se 3 . A linear scaling relationship between activation energy and the integrated crystal orbital Hamilton population of TM-S in the potential-determining step on TM@In 2 Se 3 is identified. Based on the evaluation of stability, conductivity and activity, we concluded that Ti@In 2 Se 3 , V@In 2 Se 3 , and Fe@In 2 Se 3 are the promising cathode materials for Li-S batteries. Our findings provide a fundamental understanding of the intrinsic link between the electronic structure and catalytic activity for polysulfide conversion and pave a way for the rational design of SAC-based cathodes for Li-S batteries.
Keyphrases
  • ion batteries
  • transition metal
  • aqueous solution
  • solid state
  • climate change
  • density functional theory