Characterization of Al-Ge anode materials for lithium-ion battery

Al1-xGex was synthesized as potential high capacity anode materials for lithium ion secondary batteries using melt spinning process. Electrochemical properties of Al1-xGex (with x=2,4,7,8 ) were measured and their Li storage capabilities analyzed. The Al1-xGex with an Al:Ge ratio of 3:7 showed the b...

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Main Author: Chua, Wen Jie
Other Authors: Hng Huey Hoon
Format: Final Year Project
Language:English
Published: 2014
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Online Access:http://hdl.handle.net/10356/56997
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-569972023-03-04T15:39:13Z Characterization of Al-Ge anode materials for lithium-ion battery Chua, Wen Jie Hng Huey Hoon School of Materials Science and Engineering DRNTU::Engineering::Materials::Energy materials Al1-xGex was synthesized as potential high capacity anode materials for lithium ion secondary batteries using melt spinning process. Electrochemical properties of Al1-xGex (with x=2,4,7,8 ) were measured and their Li storage capabilities analyzed. The Al1-xGex with an Al:Ge ratio of 3:7 showed the best Li storage properties, with a stable capacity of 900mAhg-1 and 1823mAhcm-3 over 50 cycles, superior to Ge metal and other Al1-xGex compositions. Furthermore, a capacity of 544 mAhg-1 is still obtainable at 1C. Notably, in terms of cycling stability and rate performance, it surpasses current Al-based anodes reported in literature. This positions Al-Ge as a potential candidate for applications that not only require high gravimetric but also high volumetric capacity. To elucidate the possible reasons for the good Li storage properties, the first cycle electrochemical lithiation and de-lithiation behaviour of the Al1-xGex anodes were investigated by ex-situ XRD. Diffraction peaks of Al and Ge broadened and showed reduction in intensity upon cycling, indicating an increase in disorder and possible amorphization of the material. The lithiation and delithiation steps were also observed to be different from pure Al and pure Ge, which also plays a role in the improved performance. The nanocrystalline/amorphous phases and the deviation in the lithiation/de-lithiation mechanism suggest a synergetic effect which mitigated the huge volume variations and enhancing reaction kinetics. Bachelor of Engineering (Materials Engineering) 2014-04-07T07:00:30Z 2014-04-07T07:00:30Z 2014 2014 Final Year Project (FYP) http://hdl.handle.net/10356/56997 en Nanyang Technological University 39 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Engineering::Materials::Energy materials
spellingShingle DRNTU::Engineering::Materials::Energy materials
Chua, Wen Jie
Characterization of Al-Ge anode materials for lithium-ion battery
description Al1-xGex was synthesized as potential high capacity anode materials for lithium ion secondary batteries using melt spinning process. Electrochemical properties of Al1-xGex (with x=2,4,7,8 ) were measured and their Li storage capabilities analyzed. The Al1-xGex with an Al:Ge ratio of 3:7 showed the best Li storage properties, with a stable capacity of 900mAhg-1 and 1823mAhcm-3 over 50 cycles, superior to Ge metal and other Al1-xGex compositions. Furthermore, a capacity of 544 mAhg-1 is still obtainable at 1C. Notably, in terms of cycling stability and rate performance, it surpasses current Al-based anodes reported in literature. This positions Al-Ge as a potential candidate for applications that not only require high gravimetric but also high volumetric capacity. To elucidate the possible reasons for the good Li storage properties, the first cycle electrochemical lithiation and de-lithiation behaviour of the Al1-xGex anodes were investigated by ex-situ XRD. Diffraction peaks of Al and Ge broadened and showed reduction in intensity upon cycling, indicating an increase in disorder and possible amorphization of the material. The lithiation and delithiation steps were also observed to be different from pure Al and pure Ge, which also plays a role in the improved performance. The nanocrystalline/amorphous phases and the deviation in the lithiation/de-lithiation mechanism suggest a synergetic effect which mitigated the huge volume variations and enhancing reaction kinetics.
author2 Hng Huey Hoon
author_facet Hng Huey Hoon
Chua, Wen Jie
format Final Year Project
author Chua, Wen Jie
author_sort Chua, Wen Jie
title Characterization of Al-Ge anode materials for lithium-ion battery
title_short Characterization of Al-Ge anode materials for lithium-ion battery
title_full Characterization of Al-Ge anode materials for lithium-ion battery
title_fullStr Characterization of Al-Ge anode materials for lithium-ion battery
title_full_unstemmed Characterization of Al-Ge anode materials for lithium-ion battery
title_sort characterization of al-ge anode materials for lithium-ion battery
publishDate 2014
url http://hdl.handle.net/10356/56997
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