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Preparation of Graphene Liquid Cells for the Observation of Lithium-ion Battery Material
Published on: February 5, 2019
Engineering multidimensional carbon networks for high-rate and stable graphite anodes
Rui Wu1, Chong Xu1, Kaiyi Chen1
1College of Materials Science and Engineering, State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Beijing, Changping, 102249, China.
Abstract:
Fast-charging lithium-ion batteries demand graphite anodes with enhanced reaction kinetics and robust structural stability. However, conventional graphite suffers from sluggish lithium-ion transport and interfacial instability during high-rate operation, and single-component carbon modifications generally fail to simultaneously optimize electronic conductivity, ion diffusion, and interfacial integrity. Herein, a hierarchical carbon architecture is engineered by integrating graphene nanosheets and carbon nanotube networks into pitch-derived carbon-coated graphite. The synergistic integration of two-dimensional graphene and one-dimensional carbon nanotubes establishes a highly efficient electron/ion transport network, which accelerates lithium-ion migration and bolsters interfacial stability. Consequently, the engineered anode delivers exceptional rate capability and long-term cycling performance. When paired with a LiFePO4 cathode, the assembled full cell demonstrates outstanding high-rate cycling stability, retaining a reversible capacity of 98.8 mAh g-1 with an 87.8% capacity retention after 600 cycles at 4C within a voltage window of 2.5-4.0 V. This work presents a highly effective strategy for the design of high-performance graphite anodes through multidimensional carbon engineering.

