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Updated: Aug 5, 2026

Elemental-sensitive Detection of the Chemistry in Batteries through Soft X-ray Absorption Spectroscopy and Resonant Inelastic X-ray Scattering
Published on: April 17, 2018
Asymmetric Electronic Configuration for Sustainable Lithium-Sulfur Batteries
Jia Yuan1, Peng Wang1, Yu Wang1
1School of Chemistry and Chemical Engineering, Shandong University, Jinan, China.
Abstract:
Homonuclear diatomic catalysts (DACs) show potential for accelerating polysulfide conversion and suppressing the shuttle effect in Li-S batteries due to favorable energy-level matching. However, their intrinsic symmetric electronic structure restricts intermetallic electron transfer, leading to unbalanced polysulfides adsorption-desorption and thus limited catalytic conversion. Herein, we construct an asymmetric Co homonuclear DAC via sulfur coordination (CoDAC-S1N5). Theoretical calculations reveal that the symmetry-broken structure induces mild electron delocalization and charge redistribution. This electronic modulation contributes to cooperative yet differentiated roles of the two Co sites governed by their eg/t2g ratios, with one site strengthening polysulfide anchoring while the other promotes S─S bond activation. This dual-site synergy effectively overcomes the intrinsic trade-off between adsorption strength and catalytic activity, leading to accelerated polysulfide conversion kinetics and improved reaction reversibility. As a result, CoDAC-S1N5 delivers outstanding cycling stability over 65 cycles in Ah-level pouch cells and achieves an initial energy density of 567.8 Wh kgtotal -1 at a low electrolyte-to-sulfur ratio of 2.1 µL mg S-1. This work establishes symmetry breaking as a key design principle for homonuclear DACs, providing mechanistic insights into the synergistic enhancement of catalytic activity and stability in Li-S systems.
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