Energy Storage Science and Technology ›› 2025, Vol. 14 ›› Issue (6): 2248-2255.doi: 10.19799/j.cnki.2095-4239.2024.1234

• Energy Storage Materials and Devices • Previous Articles     Next Articles

Preparation and performance studies of low-cost graphite thick dry electrodes

Jingjing RUAN1,3(), Xiangkun WU2, Yonghui LI1, Chongchong ZHAO3, Shenshen LI1, Tongfei WANG3, Shengjie LIANG3, Guihong GAO1,3()   

  1. 1.Longzihu New Energy Laboratory, Hydrogen Energy Storage Center, Zhengzhou 450003, Henan, China
    2.Beijing Key Laboratory of Ionic Liquids Clean Process, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China
    3.Zhengzhou Institute of Emerging Industrial Technology, Henan Key Laboratory of Energy Storage Materials and Processes, Zhengzhou 450003, Henan, China
  • Received:2024-12-26 Revised:2025-01-11 Online:2025-06-28 Published:2025-06-27
  • Contact: Guihong GAO E-mail:15702413613@163.com;ghgao@ipezz.ac.cn

Abstract:

A graphite dry electrode for lithium-ion batteries was fabricated using a binder fiberization technique. The effects of electrode thickness, polytetrafluoroethylene (PTFE) content, and carbon nanotube (CNT) addition on electrode performance were systematically investigated. Morphological and elemental distribution analyses were conducted using scanning electron microscopy (SEM) and energy-dispersive X-ray spectroscopy (EDS). Mechanical, electrical, and wetting properties were evaluated using a universal testing machine, a four-probe internal resistance meter, and an optical contact angle goniometer, respectively. Electrochemical performance was assessed through charge-discharge testing. The results showed that when the electrode thickness exceeded 300 μm, electrochemical performance deteriorated markedly; therefore, the thickness should be limited to ≤300 μm. Based on comprehensive evaluation, including electrochemical behavior, tensile strength, conductivity, and electrolyte wettability, the optimal formulation was identified as graphite∶PTFE∶CNT∶Super P (SP) at a mass ratio of 96∶1∶1∶2. This composition yielded a coulombic efficiency of 91.7%, a reversible capacity exceeding 330 mAh/g, a surface capacity of 11.28 mAh/cm2, a tensile elongation of 9.06%, a resistance of 24.1 Ω, and a contact angle of 65.33°. SEM images confirmed the presence of abundant PTFE fibers on the surface and cross-section of the electrode, forming a branched and hierarchically structured network throughout the electrode matrix. The inclusion of CNTs enhanced both the resilience and conductivity of the electrode sheet, facilitating easier fabrication. To meet the growing demand for high energy density, thick electrode manufacturing has become a critical focus. Unlike conventional wet-coating techniques, dry electrode fabrication eliminates the need for solvents, offering a cost-effective, environmentally friendly, and scalable approach to producing thick electrodes.

Key words: lithium-ion batteries, dry electrode, PTFE fiberization, graphite, thick electrode

CLC Number: