Title of article :
Advanced surface and microstructural characterization of natural graphite anodes for lithium ion batteries
Author/Authors :
Gallego، نويسنده , , Nidia C. and Contescu، نويسنده , , Cristian I. and Meyer III، نويسنده , , Harry M. and Howe، نويسنده , , Jane Y. and Meisner، نويسنده , , Roberta A. and Payzant، نويسنده , , E. Andrew and Lance، نويسنده , , Michael J. and Yoon، نويسنده , , Sang Y. and Denlinger، نويسنده , , Matthew and Wood III، نويسنده , , David L.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Pages :
9
From page :
393
To page :
401
Abstract :
Natural graphite powders were subjected to a series of thermal treatments to improve the anode irreversible capacity loss and capacity retention during long-term cycling of lithium-ion batteries. A baseline thermal treatment in inert Ar or N2 atmosphere was compared to cases with a proprietary additive to the furnace gas. This additive substantially altered the surface chemistry of the uncoated natural graphite powders and resulted in significantly improved long-term cycling performance of the lithium ion batteries over the commercial, carbon-coated natural graphite baseline. Different heat-treatment temperatures were investigated ranging from 950 to 2900 °C to achieve the desired long-term cycling performance with a significantly reduced thermal budget. A detailed summary of the characterization data is also presented, which includes X-ray diffraction, X-ray photoelectron spectroscopy, Raman spectroscopy, and temperature-programmed desorption-mass spectroscopy. Characterization data was correlated to the observed capacity fade improvements over the course of long-term cycling at high charge–discharge rates in full lithium-ion cells. It is believed that the long-term performance improvements are a result of forming a more stable solid electrolyte interface (SEI) layer on the anode graphite surfaces, which is directly related to the surface chemistry modifications imparted by the proprietary gas environment during thermal treatment.
Journal title :
Carbon
Serial Year :
2014
Journal title :
Carbon
Record number :
1927495
Link To Document :
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