Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery

Low cost group IV element (Sn) based-materials can provide high capacity substitute for lithium-ion batteries (LIBs). Tin based oxide Li2SnO3 was successfully synthesized via low temperature hydrothermal route without further calcination and used as anode materials in LIBs. In this work, eco-compati...

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Main Authors: Zakuan, Noor Syuhada, Woo, Haw Jiunn, Teo, Li Ping, Kufian, Mohd Zieauddin, Osman, Zurina
Format: Article
Published: Electrochemical Society 2019
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Online Access:http://eprints.um.edu.my/22909/
https://doi.org/10.1149/2.0091912jes
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spelling my.um.eprints.229092019-11-01T06:09:24Z http://eprints.um.edu.my/22909/ Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery Zakuan, Noor Syuhada Woo, Haw Jiunn Teo, Li Ping Kufian, Mohd Zieauddin Osman, Zurina Q Science (General) QC Physics Low cost group IV element (Sn) based-materials can provide high capacity substitute for lithium-ion batteries (LIBs). Tin based oxide Li2SnO3 was successfully synthesized via low temperature hydrothermal route without further calcination and used as anode materials in LIBs. In this work, eco-compatible chemicals Tin (IV) oxide, SnO2 and lithium hydroxide monohydrate, LiOH.H2O were used as starting reagents. XRD results show that the monoclinic crystal structure Li2SnO3 is of high purity. This finding agrees with TEM micrographs that display nano-sized particle with interplanar spacing corresponding to (110) and (101) lattice planes. The narrow particle size distribution of 50-60 nm predicts the outstanding performance of LIBs. The first cycle discharge capacity is 2582 mAhg-1. However, the cycling performance only maintain in between 180-290 mAhg-1 up to 50 cycles. The mechanism of Li reactivity in Li2SnO3 is through Li-Sn alloying/de-alloying process. The diffusion coefficient of Li+ ion is calculated as 2.144 × 10-13 cm2 s-1. Impedance studies of LIB cells proof the formation of SEI at the first cycle and explains the poor stability of the cells. Electrochemical Society 2019 Article PeerReviewed Zakuan, Noor Syuhada and Woo, Haw Jiunn and Teo, Li Ping and Kufian, Mohd Zieauddin and Osman, Zurina (2019) Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery. Journal of The Electrochemical Society, 166 (12). A2341-A2348. ISSN 0013-4651 https://doi.org/10.1149/2.0091912jes doi:10.1149/2.0091912jes
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic Q Science (General)
QC Physics
spellingShingle Q Science (General)
QC Physics
Zakuan, Noor Syuhada
Woo, Haw Jiunn
Teo, Li Ping
Kufian, Mohd Zieauddin
Osman, Zurina
Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery
description Low cost group IV element (Sn) based-materials can provide high capacity substitute for lithium-ion batteries (LIBs). Tin based oxide Li2SnO3 was successfully synthesized via low temperature hydrothermal route without further calcination and used as anode materials in LIBs. In this work, eco-compatible chemicals Tin (IV) oxide, SnO2 and lithium hydroxide monohydrate, LiOH.H2O were used as starting reagents. XRD results show that the monoclinic crystal structure Li2SnO3 is of high purity. This finding agrees with TEM micrographs that display nano-sized particle with interplanar spacing corresponding to (110) and (101) lattice planes. The narrow particle size distribution of 50-60 nm predicts the outstanding performance of LIBs. The first cycle discharge capacity is 2582 mAhg-1. However, the cycling performance only maintain in between 180-290 mAhg-1 up to 50 cycles. The mechanism of Li reactivity in Li2SnO3 is through Li-Sn alloying/de-alloying process. The diffusion coefficient of Li+ ion is calculated as 2.144 × 10-13 cm2 s-1. Impedance studies of LIB cells proof the formation of SEI at the first cycle and explains the poor stability of the cells.
format Article
author Zakuan, Noor Syuhada
Woo, Haw Jiunn
Teo, Li Ping
Kufian, Mohd Zieauddin
Osman, Zurina
author_facet Zakuan, Noor Syuhada
Woo, Haw Jiunn
Teo, Li Ping
Kufian, Mohd Zieauddin
Osman, Zurina
author_sort Zakuan, Noor Syuhada
title Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery
title_short Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery
title_full Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery
title_fullStr Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery
title_full_unstemmed Li2SnO3 Anode Synthesized via Simplified Hydrothermal Route Using Eco-Compatible Chemicals for Lithium-Ion Battery
title_sort li2sno3 anode synthesized via simplified hydrothermal route using eco-compatible chemicals for lithium-ion battery
publisher Electrochemical Society
publishDate 2019
url http://eprints.um.edu.my/22909/
https://doi.org/10.1149/2.0091912jes
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score 13.214268