LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties

LiCoPO4 and Li1.02(Co0.9Fe0.1)0.98PO4 were prepared by conventional solid state reactions. The surface modification of Li1.02(Co0.9Fe0.1)0.98PO4 particulates by LiFePO4 was successfully carried out by a dry coating procedure. TEM analysis confirmed the presence of a LiFePO4 coating layer of about 20...

Full description

Saved in:
Bibliographic Details
Main Authors: Aravindan, Vanchiappan, Jang, I. C., Son, C. G., Yang, S. M. G., Lee, J. W., Cho, A. R., Park, G. J., Kang, K. S., Kim, W. S., Cho, W. I., Lee, Y. S.
Other Authors: Energy Research Institute @ NTU (ERI@N)
Format: Article
Language:English
Published: 2014
Subjects:
Online Access:https://hdl.handle.net/10356/100183
http://hdl.handle.net/10220/24100
Tags: Add Tag
No Tags, Be the first to tag this record!
Institution: Nanyang Technological University
Language: English
id sg-ntu-dr.10356-100183
record_format dspace
spelling sg-ntu-dr.10356-1001832021-01-08T08:20:47Z LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties Aravindan, Vanchiappan Jang, I. C. Son, C. G. Yang, S. M. G. Lee, J. W. Cho, A. R. Park, G. J. Kang, K. S. Kim, W. S. Cho, W. I. Lee, Y. S. Energy Research Institute @ NTU (ERI@N) DRNTU::Science::Chemistry LiCoPO4 and Li1.02(Co0.9Fe0.1)0.98PO4 were prepared by conventional solid state reactions. The surface modification of Li1.02(Co0.9Fe0.1)0.98PO4 particulates by LiFePO4 was successfully carried out by a dry coating procedure. TEM analysis confirmed the presence of a LiFePO4 coating layer of about 20 nm on the surface of the Li1.02(Co0.9Fe0.1)0.98PO4 particles. All three cells delivered high initial discharge capacities of 122, 130 and 128 mA h g−1 for LiCoPO4, Li1.02(Co0.9Fe0.1)0.98PO4, and LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4, respectively. However, these cells presented quite different cycle retention rates after 20 cycles, 21, 22 and 70% for LiCoPO4, Li1.02(Co0.9Fe0.1)0.98PO4, and LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4, respectively. The improved cycle retention of the LiFePO4-modified Li1.02(Co0.9Fe0.1)0.98PO4 resulted from its reduced reactivity towards the electrolyte and the effective prevention of resistive layer formation on the LiCoPO4 surface during high voltage cycling. 2014-10-21T08:51:21Z 2019-12-06T20:17:57Z 2014-10-21T08:51:21Z 2019-12-06T20:17:57Z 2011 2011 Journal Article Jang, I. C., Son, C. G., Yang, S. M. G., Lee, J. W., Cho, A. R., Aravindan, V., et al. (2011). LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties. Journal of materials chemistry, 21(18), 6510-6514. https://hdl.handle.net/10356/100183 http://hdl.handle.net/10220/24100 10.1039/c1jm10574d 158357 en Journal of materials chemistry © 2011 The Royal Society of Chemistry. 5 p.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Chemistry
spellingShingle DRNTU::Science::Chemistry
Aravindan, Vanchiappan
Jang, I. C.
Son, C. G.
Yang, S. M. G.
Lee, J. W.
Cho, A. R.
Park, G. J.
Kang, K. S.
Kim, W. S.
Cho, W. I.
Lee, Y. S.
LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties
description LiCoPO4 and Li1.02(Co0.9Fe0.1)0.98PO4 were prepared by conventional solid state reactions. The surface modification of Li1.02(Co0.9Fe0.1)0.98PO4 particulates by LiFePO4 was successfully carried out by a dry coating procedure. TEM analysis confirmed the presence of a LiFePO4 coating layer of about 20 nm on the surface of the Li1.02(Co0.9Fe0.1)0.98PO4 particles. All three cells delivered high initial discharge capacities of 122, 130 and 128 mA h g−1 for LiCoPO4, Li1.02(Co0.9Fe0.1)0.98PO4, and LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4, respectively. However, these cells presented quite different cycle retention rates after 20 cycles, 21, 22 and 70% for LiCoPO4, Li1.02(Co0.9Fe0.1)0.98PO4, and LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4, respectively. The improved cycle retention of the LiFePO4-modified Li1.02(Co0.9Fe0.1)0.98PO4 resulted from its reduced reactivity towards the electrolyte and the effective prevention of resistive layer formation on the LiCoPO4 surface during high voltage cycling.
author2 Energy Research Institute @ NTU (ERI@N)
author_facet Energy Research Institute @ NTU (ERI@N)
Aravindan, Vanchiappan
Jang, I. C.
Son, C. G.
Yang, S. M. G.
Lee, J. W.
Cho, A. R.
Park, G. J.
Kang, K. S.
Kim, W. S.
Cho, W. I.
Lee, Y. S.
format Article
author Aravindan, Vanchiappan
Jang, I. C.
Son, C. G.
Yang, S. M. G.
Lee, J. W.
Cho, A. R.
Park, G. J.
Kang, K. S.
Kim, W. S.
Cho, W. I.
Lee, Y. S.
author_sort Aravindan, Vanchiappan
title LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties
title_short LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties
title_full LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties
title_fullStr LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties
title_full_unstemmed LiFePO4 modified Li1.02(Co0.9Fe0.1)0.98PO4 cathodes with improved lithium storage properties
title_sort lifepo4 modified li1.02(co0.9fe0.1)0.98po4 cathodes with improved lithium storage properties
publishDate 2014
url https://hdl.handle.net/10356/100183
http://hdl.handle.net/10220/24100
_version_ 1690658437213454336