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  4. Improving the Electrochemical Activity of LiMnPO4 Via Mn-Site Substitution
 
research article

Improving the Electrochemical Activity of LiMnPO4 Via Mn-Site Substitution

Wang, Deyu
•
Ouyang, Chuying
•
Drezen, Thierry
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2010
Journal Of The Electrochemical Society

HPL SA report the modification of the electrochemical performance of lithium manganese phosphate (LiMnPO4) via Mn-site bivalent substitution. Manganese (10%) is substituted with iron, nickel, magnesium, or zinc. These substituents are shown via an X-ray to form solid solutions. The choice of substituent is demonstrated to have a strong influence on the electrochemical performance. The optimum performance improvement was achieved when 10% of Fe is substituted. This is ascribed to a smaller crystallite and a higher electronic conductivity observed in this material: Presumably Fe plays a role in hindering the crystallite growth and in increasing the carrier's transportation. Electronic structures were calculated by density function theory to understand the different influences of substitute cations.

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Type
research article
DOI
10.1149/1.3271112
Web of Science ID

WOS:000273222700017

Author(s)
Wang, Deyu
•
Ouyang, Chuying
•
Drezen, Thierry
•
Exnar, Ivan
•
Kay, Andreas
•
Kwon, Nam-Hee
•
Gouerec, Pascal
•
Miners, James H.
•
Wang, Mingkui
•
Graetzel, Michael
Date Issued

2010

Published in
Journal Of The Electrochemical Society
Volume

157

Start page

A225

End page

A229

Subjects

density functional theory

•

electrical conductivity

•

electrochemistry

•

electronic structure

•

lithium compounds

•

manganese compounds

•

secondary cells

•

solid solutions

•

stoichiometry

•

Rechargeable Lithium Batteries

•

Lifepo4 Synthesis Routes

•

Cathode Materials

•

Phospho-Olivines

•

1St Principles

•

Ion Batteries

•

Lixmpo4 M

•

Performance

•

Iron

•

Conductivity

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
SB  
Available on Infoscience
December 16, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/75785
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