Some transition metal (oxy)phosphates and vanadium oxides for lithium batteries
Top Cited Papers
- 7 April 2005
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Journal of Materials Chemistry
- Vol. 15 (33) , 3362-3379
- https://doi.org/10.1039/b501961c
Abstract
Iron and vanadium oxides have a rich structural chemistry when combined with phosphate groups; the transition metal most commonly in an octahedral coordination. The inductive effect increases the potential difference between Fe3+/Fe2+ and Li/Li+ couples in phosphate lattices relative to the pure iron oxides; a similar behavior is found for the corresponding vanadium compounds. Of the iron phosphates, the olivine phase LiFePO4 has high thermal and chemical stability, even when lithium-free; the challenges of low electronic conductivity are being overcome, but data is lacking on the true lithium diffusion behavior. The all-ferric lipscombite-type phase, Fe1.33PO4OH, shows the highest capacity of the iron phosphates for lithium intercalation. The ε-VOPO4 material, formed by the oxidative de-intercalation of protons from H2VOPO4, can reversibly react with two lithium atoms in two steps. The face- and edge-sharing transition metal octahedra lead to a range of interesting and structurally revealing magnetic interactions. A number of vanadium oxide phases are known, with those containing VO6 octahedra showing the greatest stability when undergoing redox reactions. Such structures have been synthesized using xerogel, hydrothermal and electrochemical methods. The double-sheet delta structures show reversible lithium intercalation of up to one lithium ion per vanadium, leading to the highest storage capacities. However, the large potential width of discharge and the apparent low reaction rates will minimize their use unless improved.Keywords
This publication has 115 references indexed in Scilit:
- Changes in Electronic Structure between Cobalt and Oxide Ions of Lithium Cobalt Phosphate as 4.8-V Positive Electrode MaterialChemistry of Materials, 2004
- Surface Chemistry of Carbon-Treated LiFePO[sub 4] Particles for Li-Ion Battery Cathodes Studied by PESElectrochemical and Solid-State Letters, 2003
- On the way to the optimization of Li3Fe2(PO4)3 positive electrode materialsSolid State Sciences, 2002
- Synthesis and electrochemistry of a vanadium-pillared manganese oxideElectrochemistry Communications, 2000
- Vanadium Oxide Nanotubes. A New Nanostructured Redox‐Active Material for the Electrochemical Insertion of LithiumJournal of the Electrochemical Society, 1999
- Thermal Stability of LiFePO[sub 4]-Based CathodesElectrochemical and Solid-State Letters, 1999
- Redox-Active Nanotubes of Vanadium OxideAngewandte Chemie International Edition in English, 1998
- Hydrothermal synthesis of iron and zinc double vanadium oxddes using the tetramethyl ammonium ionMaterials Research Bulletin, 1997
- The natural and synthetic tavorite minerals: Crystal chemistry and magnetic propertiesMaterials Letters, 1994
- Interface properties of vanadium pentoxide gelsMaterials Research Bulletin, 1991