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March 19, 2026Carbon Energy2 citationsOpen Access

Engineering Spin State of Ni Single‐Atoms to Enhance Electrocatalytic Activity of Sulfur Conversion in Lithium–Sulfur Batteries

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MLMengyang LiGCGuiqiang CaoYQYiming Qi

Key Points

  • This research aims to explore how the spin state of nickel single-atom catalysts affects their electrocatalytic activity for sulfur conversion in lithium-sulfur batteries.
  • Conducted systematic experiments to evaluate Ni single-atom catalysts with varying spin states.
  • Modified pyrrolic N and pyridinic N ratios to tune the catalytic properties.
  • Assessed the relationship between spin states and catalytic activity towards lithium polysulfides.
  • High-spin state Ni SACs exhibited strong catalytic activity for lithium polysulfides.
  • Low-spin state Ni SACs showed high adsorption capacity for lithium polysulfides.
  • Intermediate spin states resulted in a balance between adsorption and reactivity.
  • Ni-N pd-pr -SC cathodes achieved a high initial capacity of 606 mAh g − 1 at 4.0 C and retained 81.3% capacity after 300 cycles.

Abstract

ABSTRACT Understanding the correlation between spin state and electrocatalytic activity of single‐atom catalysts (SACs) may help us to address the sulfur redox kinetics problems in lithium–sulfur batteries (LSBs). Herein, systematic experiments were carried out to study the catalytic activities of Ni SACs with different spin states via modulating the pyrrolic N/pyridinic N ratio. Ni SACs with high‐spin state show strong catalytic activity toward lithium polysulfides (LPSs), whereas the Ni SACs with low‐spin state have strong adsorption capacity for LPSs. Therefore, the preparation of Ni SACs with an intermediate spin state by controlling pyridinic N and pyrrolic N enables an excellent balance between the adsorption and catalytic. Importantly, the introduction of S atoms can enhance the content of pyrrolic N while ensuring a high total content of pyridinic N and pyrrolic N. Consequently, the sulfur cathode based on Ni‐N pd‐pr ‐SC shows a remarkable battery performance with a high initial capacity of 606 mAh g − 1 at 4.0 C and a capacity retention of 81.3% after 300 cycles. It is believed that this work provides a profound understanding of optimizing the spin state of Ni SACs for LSBs.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69bb92f2496e729e62980b7chttps://doi.org/10.1002/cey2.70201
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