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Conductive polymer-coated nanocellulose enables dual-gradient thick electrodes for redox-homogeneous ultrahigh-areal-capacity Li-ion batteries

  • Ningxin Chen
  • , Sida Xie
  • , Jie Deng
  • , Zichan Yuan
  • , Zihan Guo
  • , Kunkun Guo
  • , Yue Ma
  • , Chaoji Chen
  • , Wenshuai Chen
  • , Zhaohui Wang
  • Hunan University
  • Wuhan University
  • Northeast Forestry University

Research output: Contribution to journalArticlepeer-review

Abstract

High-areal-capacity thick electrodes are essential for enhancing the energy density of lithium-ion batteries, yet their deployment is limited by redox heterogeneity caused by sedimentation-induced material segregation during electrode thickening. Here, we overcome this challenge by constructing a sedimentation-guided, redox-homogeneous thick electrode enabled by conducting polymer-coated nanocellulose. Unlike intrinsically insulating nanocellulose, this modified nanocellulose combines high electronic conductivity with enhanced ion transport, thereby unifying the roles of binders, conductive additives, and mechanical scaffolds in a single-phase network. This eliminates the binder/carbon domain inhomogeneity characteristic of conventional nanocellulose-based systems and transforms sedimentation from a fabrication challenge into a structural design advantage. The resulting thick paper electrodes exhibit an active material-porosity dual-gradient structure, in which active materials are densely and uniformly embedded within an interconnected conductive nanocellulose matrix, supporting fast, bicontinuous ion/electron transport and spatially uniform Li+ flux and current density. Using LiFePO4 as a model, the electrodes deliver high areal and volumetric capacities of 16.7 mAh cm−2 and 431.9 mAh cm−3, respectively, at a loading of 110 mg cm−2 and a density of 2.9 g cm−3. This strategy not only redefines sedimentation as a tool for electrode engineering but also expands the functionality of sustainable cellulose materials for next-generation high-energy batteries.

Original languageEnglish
Pages (from-to)4456-4468
Number of pages13
JournalEnergy and Environmental Science
Volume19
Issue number13
DOIs
StatePublished - 7 Jul 2026

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

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