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Silver Vanadium Phosphorous Oxide, Ag(2)VO(2)PO(4): Chimie Douce Preparation and Resulting Lithium Cell Electrochemistry

Overview
Journal J Power Sources
Date 2011 Jul 19
PMID 21765587
Citations 5
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Abstract

Recently, we have shown silver vanadium phosphorous oxide (Ag(2)VO(2)PO(4), SVPO) to be a promising cathode material for lithium based batteries. Whereas the first reported preparation of SVPO employed an elevated pressure, hydrothermal approach, we report herein a novel ambient pressure synthesis method to prepare SVPO, where our chimie douce preparation is readily scalable and provides material with a smaller, more consistent particle size and higher surface area relative to SVPO prepared via the hydrothermal method. Lithium electrochemical cells utilizing SVPO cathodes made by our new process show improved power capability under constant current and pulse conditions over cells containing cathode from SVPO prepared via the hydrothermal method.

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References
1.
Marschilok A, Kozarsky E, Tanzil K, Zhu S, Takeuchi K, Takeuchi E . Electrochemical Reduction of Silver Vanadium Phosphorous Oxide, Ag(2)VO(2)PO(4): Silver Metal Deposition and Associated Increase in Electrical Conductivity. J Power Sources. 2010; 195(19):6839-6846. PMC: 2907907. DOI: 10.1016/j.jpowsour.2010.04.033. View

2.
Zhang S, Li W, Li C, Chen J . Synthesis, characterization, and electrochemical properties of Ag2V4O11 and AgVO3 1-D nano/microstructures. J Phys Chem B. 2006; 110(49):24855-63. DOI: 10.1021/jp065478p. View

3.
Lamber , Wetjen , JAEGER . Size dependence of the lattice parameter of small palladium particles. Phys Rev B Condens Matter. 1995; 51(16):10968-10971. DOI: 10.1103/physrevb.51.10968. View

4.
Sauvage F, Bodenez V, Tarascon J, Poeppelmeier K . Room-temperature synthesis leading to nanocrystalline Ag(2)V(4)O(11). J Am Chem Soc. 2010; 132(19):6778-82. DOI: 10.1021/ja1009713. View

5.
Takeuchi E, Marschilok A, Tanzil K, Kozarsky E, Zhu S, Takeuchi K . Electrochemical reduction of silver vanadium phosphorous oxide, Ag(2)VO(2)PO(4): the formation of electrically conductive metallic silver nanoparticles. Chem Mater. 2010; 21(20):4934-4939. PMC: 2788945. DOI: 10.1021/cm902102k. View