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Modulating p-Band Center of M-N4 Site via Engineering Second-Shell Carbon Defects for High-Performance Lithium-Carbon Composite Anodes

  • Zhaolin Gou
  • , Qike Xu
  • , Xinyu Zhang
  • , Feiyang Yang
  • , Xiaomin Han
  • , Zhuolin Yang
  • , Xue Jiang
  • , Tao Liu
  • , Junce Wang
  • , Siqi Gan
  • , Xinrong Hu
  • , Ziyi Chen
  • , Cunzhong Zhang
  • , Lijun Zheng
  • , Jun Lu
  • , Yuefeng Su
  • , Ying Yao*
  • *此作品的通讯作者
  • Beijing Institute of Technology
  • Zhejiang University

科研成果: 期刊稿件文章同行评审

摘要

Lithium (Li) metal anodes remain commercially constrained by irreversible losses from inherent electrochemical activity. While carbon-based materials mitigate Li metal deterioration through regulated deposition, dendrite suppression, and volume accommodation, the fabrication of stable Li─C composite anodes is consistently hindered by the intrinsic lattice mismatch. To address this atomic-scale incompatibility, we engineer carbon defects adjacent to single-atom Zn-N4 sites with high dispersibility (denoted as ZND), altering their symmetrical electron distribution to release stronger electroactivity, using metal-polyphenol coordination and structural rearrangement. Theoretical simulations indicate that the electronic configuration is reconstructed, and the p-band center of the electronegative nitrogen atoms located in the first shell is significantly elevated, notably intensifying the interaction with the molecular orbitals of the reactant Li+. Experimental characterization confirms that ZND optimizes Li hetero-nucleation behavior, promoting the formation of dense Li deposition layers and an inorganic-rich solid electrolyte interface (SEI). The Li||ZND half-cell achieves over 450 cycles of stable cycling at current densities of 1.0 and 2.0 mA cm−2, respectively, with a fixed areal capacity of 1.0 mAh cm−2. Consequently, the fabricated Li─C composite anode demonstrates exceptional stability in ether-based electrolytes. This work establishes a paradigm for atomic-level engineering in Li─C composite anodes.

源语言英语
文章编号e76515
期刊Advanced Functional Materials
36
54
DOI
出版状态已出版 - 6 7月 2026

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