4.6 Article

Single atom catalysts supported on N-doped graphene toward fast kinetics in Li-S batteries: a theoretical study

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 9, Issue 20, Pages 12225-12235

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta01948a

Keywords

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Funding

  1. National Natural Science Foundation of China (NSFC) [21771018, 21973053]

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In this study, density functional theory was used to investigate the performance of single metal atom catalysts embedded in nitrogen-doped defective graphene for fast kinetics in Li-S batteries. Evaluation criteria were established to guide catalyst screening, and it was found that the nitrogen coordination environment and sulfur-metal interactions play critical roles in catalytic performance. Moreover, a novel screening strategy was proposed to predict the catalytic activity of single metal atom catalysts supported on nitrogen-doped graphene.
To suppress the shuttle effect of lithium polysulfides and promote fast kinetics of the charge-discharge process in Li-S batteries, it is essential to search for promising catalysts with sufficient stability and high activity. Here, we employ density functional theory to explore the performance of 3d, 4d and 5d transition metals embedded in nitrogen-doped defective graphene (M@N/G, including M@N3/G and M@N4/G) as single atom catalysts toward fast kinetics in Li-S batteries. Four evaluation criteria of M@N/G are established to guide the screening of catalysts. Electronic structure analysis shows that the nitrogen coordination environment can largely tune the valence orbital splitting of the metal center and further affect the intrinsic activity of catalysts; M@N4/G exhibits superior catalytic performance to M@N3/G. We also found that sulfur-metal interactions play a critical role in the adsorption and activation of sulfur species on M@N/G. We therefore propose to use the sulfur atom adsorption free energy as a descriptor of catalytic activity combined with the knowledge of M-3d@N/G to effectively predict the activity of M-4d,M-5d@N/G. As a result, we expect that the Sc, Cr, Mn, Ru, Os, and Ir single metal atom catalysts supported on N4/G have better than or at least comparable catalytic performance to the ever-reported V, Fe, and Co@N4/G for Li-S batteries. In particular, because of the low cost, Cr@N4/G and Mn@N4/G are preferentially recommended with a small free energy change of the rate-determining step (0.62 eV and 0.54 eV) during discharge and a low decomposition barrier of *Li2S (1.42 eV and 1.29 eV) during charge simultaneously. Our study builds a novel screening strategy and can guide future theoretical study on catalysts toward Li-S batteries with fast kinetics.

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