Achieving High Volumetric Lithium Storage Capacity in Compact Carbon Materials with Controllable Nitrogen Doping

Jinyin Jin, Zhiwei Wang, Rui Wang, Jialiang Wang, Zhendong Huang, Yanwen Ma, Hai Li, Su Huai Wei, Xiao Huang, Jiaxu Yan, Shaozhou Li, Wei Huang

Research output: Contribution to journalArticlepeer-review

50 Scopus citations

Abstract

Although nanostructured/nanoporous carbon and silicon-based materials are a potential replacement for graphite as cost-effective anodes for lithium ion batteries (LIBs), their extremely low packing density leads to considerably reduced volumetric capacities. Herein, a highly compact carbon anode material constructed from sub-2 nm nanosized graphitic domains is reported that exhibits excellent capacity density. By introducing a coordination agent in the synthesis precursors, an unusually high concentration of N-doping (≈26.56 wt%) is achieved, which is mainly confined at the graphitic edges with the pyrrolic-N and pyridinic-N configurations. As further supported experimentally and theoretically, the edge-N dopants, particularly the pyrrolic-N, favor both ion diffusion kinetics and lithium storage via adsorption. Based on the lithiation-state electrode volume, the compact anode shows a capacity density of 951 mAh cm total −3 that is comparable with Si anodes and surpasses all reported carbon-based anodes, revealing its potential in promoting the performance of future LIBs.

Original languageEnglish
Article number1807441
JournalAdvanced Functional Materials
Volume29
Issue number12
DOIs
StatePublished - 21 Mar 2019

Keywords

  • anode materials
  • batteries
  • carbon
  • electrochemistry

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