Synthesis of LiyMnSiOx and LiMnPO4 nanostructures
Author:
Publisher
Royal Society of Chemistry (RSC)
Subject
General Materials Science
Link
http://pubs.rsc.org/en/content/articlepdf/2009/NR/B9NR00149B
Reference11 articles.
1. Approaching Theoretical Capacity of LiFePO[sub 4] at Room Temperature at High Rates
2. Reducing Carbon in LiFePO[sub 4]/C Composite Electrodes to Maximize Specific Energy, Volumetric Energy, and Tap Density
3. Impact of the Carbon Coating Thickness on the Electrochemical Performance of LiFePO[sub 4]/C Composites
4. Impact of LiFePO[sub 4]∕C Composites Porosity on Their Electrochemical Performance
5. Synthesis and characterization of Li2MnSiO4/C nanocomposite cathode material for lithium ion batteries
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1. Three-Dimensional LiMnPO4·Li3V2(PO4)3/C Nanocomposite as a Bicontinuous Cathode for High-Rate and Long-Life Lithium-Ion Batteries;ACS Applied Materials & Interfaces;2015-08-03
2. Hydrothermal synthesis of flower-like LiMnPO4nanostructures self-assembled with (010) nanosheets and their application in Li-ion batteries;CrystEngComm;2015
3. From nanorods of palygorskite to nanosheets of smectite via a one-step hydrothermal process;RSC Advances;2015
4. Enhanced electrochemical performance of <30 nm thin LiMnPO4 nanorods with a reduced amount of carbon as a cathode for lithium ion batteries;Electrochimica Acta;2012-05
5. Carbon Nanotube-Loaded Electrospun LiFePO4/Carbon Composite Nanofibers As Stable and Binder-Free Cathodes for Rechargeable Lithium-Ion Batteries;ACS Applied Materials & Interfaces;2012-02-10
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