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Atomic Sn clusters engineered electron-deficient carbon nanofibers enable bulk-interface synergy for high-capacity and durable lithium-ion batteries

  • Qi Lai
  • , Yu Dou
  • , Chi Pong Tsui
  • , Mengpei Qi
  • , Qing Zhang (Corresponding Author)
  • , Yunhai Zhu
  • , Xiaofeng Li (Corresponding Author)
  • , Chak Yin Tang
  • , Yingkui Yang (Corresponding Author)

Research output: Journal article publicationJournal articleAcademic researchpeer-review

Abstract

Alloy-type anodes for lithium-ion batteries face irreversible structural degradation from > 300 % volume changes and unstable interfaces due to electron leakage-induced electrolyte decomposition. Herein, we resolve this via atomic-scale engineering of amorphous Sn clusters (<3 nm) in an electron-deficient nitrogen-doped carbon nanofiber matrix (ASC@NCNF), where robust Sn-N coordination bonds and interfacial charge redistribution create a dual-stabilization mechanism. The isotropic lithiation behavior of amorphous Sn cluster enables adaptive stress dissipation during cycling, suppressing pulverization. Concurrently, the electron-deficient carbon substrate reduces parasitic reactions through controlled electron transfer, fostering an inorganic-rich and ion-conductive SEI. This atomic-to-macroscopic design breakthrough translates to unprecedented electrochemical performance. The as-fabricated ASC@NCNF anode delivers exceptional rate capability (398 mAh g−1 at 10 A g−1) and unprecedented cycling stability (10 A g−1 after 10,000 cycles with 60 % capacity retention), as well as operation at −30 °C (0.5 A g−1). Practical ASC@NCNF//NCM811 pouch cell retains 98 % of initial capacity after 100 cycles at 1 C. Combining X-ray absorption spectroscopy and DFT calculations, we demonstrate the atomic-scale principles governing cluster-substrate interactions and their macroscopic electrochemical consequences. This work establishes a paradigm for bridging atomic-scale cluster engineering with macroscopic electrode durability, offering insights into high-energy-density energy storage systems.

Original languageEnglish
Article number110987
Number of pages9
JournalNano Energy
Volume139
DOIs
Publication statusPublished - 15 Jun 2025

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Bulk-interface synergy
  • Carbon nanofibers
  • Charge redistribution
  • Cluster-substrate interactions
  • Electrospinning
  • Lithium-ion batteries

ASJC Scopus subject areas

  • Renewable Energy, Sustainability and the Environment
  • General Materials Science
  • Electrical and Electronic Engineering

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