Structural and Surface Modifications of LiFePO[sub 4] Olivine Particles and Their Electrochemical Properties
- 1 January 2006
- journal article
- Published by The Electrochemical Society in Journal of the Electrochemical Society
- Vol. 153 (6) , A1108-A1114
- https://doi.org/10.1149/1.2192732
Abstract
LiFePO4LiFePO4 -based olivine compounds were prepared by the usual ceramic method, where some modifications were carried out in order to improve the electrical conductivity of the cathode compound. Considering that the cathode is made up of electrochemical active particles and a nonactive polymer binder, two different methods were applied. The first one is related to the improvement of the interparticle conduction, and the other is the enhancement of the conductivity in the active particle itself. The former was attained with thermal decomposition of an organic additive (pyrene) during the sample preparation process, and the precipitated carbon was investigated with Raman spectroscopy. The bulk conductivity of the olivine was improved with a partial substitution of Fe2+Fe2+ with Mn2+Mn2+ , where the holes were incorporated into the valence band. These modifications significantly altered the electrochemical properties of the olivine cathode: large specific capacity (140mAh∕g)(140mAh∕g) and small capacity fading. Although the importance of carbon deposition was confirmed as reported elsewhere, the structural modification effect was also more important than the surface one. The result will contribute to reduce carbon content of LiFePO4LiFePO4 -based positive electrodes, which is important for their practical use.Keywords
This publication has 44 references indexed in Scilit:
- A new promising sol?gel synthesis of phospho-olivines as environmentally friendly cathode materials for Li-ion cellsSolid State Ionics, 2004
- Synthesis and electrochemical properties of olivine LiFePO4 as a cathode material prepared by mechanical alloyingJournal of Power Sources, 2004
- Comparative studies of the electronic structure of LiFePO4, FePO4, Li3PO4, LiMnPO4, LiCoPO4, and LiNiPO4Journal of Applied Physics, 2004
- Electronic Structure and Electrical Conductivity of Undoped LiFePO[sub 4]Electrochemical and Solid-State Letters, 2004
- Nonaqueous Sol-Gel Synthesis of High-Performance LiFePO[sub 4]Electrochemical and Solid-State Letters, 2004
- Fine-particle lithium iron phosphate LiFePO4 synthesized by a new low-cost aqueous precipitation techniqueJournal of Power Sources, 2003
- Surface Chemistry of Carbon-Treated LiFePO[sub 4] Particles for Li-Ion Battery Cathodes Studied by PESElectrochemical and Solid-State Letters, 2003
- Lithium Iron(II) Phospho-olivines Prepared by a Novel Carbothermal Reduction MethodElectrochemical and Solid-State Letters, 2003
- Optimized LiMn[sub y]Fe[sub 1−y]PO[sub 4] as the Cathode for Lithium BatteriesJournal of the Electrochemical Society, 2002
- X-Ray Absorption Study of Li[sub x]Mn[sub y]Fe[sub 1−y]PO[sub 4] (0 ≤ x ≤1, 0< y ≤1)Journal of the Electrochemical Society, 2002