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Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries

Integrated Al/Ni electrodes of lithium-ion batteries (LIBs) with variant atomic ratios were successfully fabricated by a one-step laser-sintering process. The microstructure, phase composition, and pore structure were controlled by the raw material composition and laser parameters. The electrodes sh...

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Autores principales: Zhang, Xue, Wang, Cunshan, Yang, Wenfei, Gao, Dongdong, Zhang, Zhongyuan, Dong, Xinglong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064434/
https://www.ncbi.nlm.nih.gov/pubmed/35520142
http://dx.doi.org/10.1039/d1ra08735e
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author Zhang, Xue
Wang, Cunshan
Yang, Wenfei
Gao, Dongdong
Zhang, Zhongyuan
Dong, Xinglong
author_facet Zhang, Xue
Wang, Cunshan
Yang, Wenfei
Gao, Dongdong
Zhang, Zhongyuan
Dong, Xinglong
author_sort Zhang, Xue
collection PubMed
description Integrated Al/Ni electrodes of lithium-ion batteries (LIBs) with variant atomic ratios were successfully fabricated by a one-step laser-sintering process. The microstructure, phase composition, and pore structure were controlled by the raw material composition and laser parameters. The electrodes showed working merits without any conductive agent and binder, or even the collector used in a traditional battery. It was shown that the electrode consisted of multi-phases, i.e., Al, Al(3)Ni(2), Al(3)Ni, and Ni, when the Al/Ni atomic ratio was higher than 5 : 5. A lower Al/Ni atomic ratio less than 5 : 5 favored the formation of a dual-phase electrode consisting of Al(3)Ni(2) and Ni. As the Al content increased, the specific surface area of the as-sintered electrodes increased in the initial stage and then decreased. The formation of pores was closely related to the content of the residual Al phase after the laser sintering. The residual Al phase filled the pores when the Al content was high, leading to a lower pore size. In contrast, the liquid Al phase completely reacted with the Ni component, leaving a large number of pores at its original sites. The linked pores can serve as transport channels for Li(+) ions, provide mass sites for electrochemical reactions, and also buffer huge volume changes of the active material. Among the electrodes, the one with an Al/Ni ratio of 3 : 7 showed the best cycling/rate performance, i.e., a capacity of 522.8 mA h g(−1) by a current of 0.1 A g(−1) after 200 cycles, even holding to 338.4 mA h g(−1) by a big current impact at 2 A g(−1). It formed a metallurgical combination between the conductive network and the active material with multiple porous structures, which is helpful for the electrodes to provide high capacity and maintain structural stability during cycling. In addition, the average laser-sintering time of a single electrode was within 10 s, which is suitable for industrial mass production.
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spelling pubmed-90644342022-05-04 Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries Zhang, Xue Wang, Cunshan Yang, Wenfei Gao, Dongdong Zhang, Zhongyuan Dong, Xinglong RSC Adv Chemistry Integrated Al/Ni electrodes of lithium-ion batteries (LIBs) with variant atomic ratios were successfully fabricated by a one-step laser-sintering process. The microstructure, phase composition, and pore structure were controlled by the raw material composition and laser parameters. The electrodes showed working merits without any conductive agent and binder, or even the collector used in a traditional battery. It was shown that the electrode consisted of multi-phases, i.e., Al, Al(3)Ni(2), Al(3)Ni, and Ni, when the Al/Ni atomic ratio was higher than 5 : 5. A lower Al/Ni atomic ratio less than 5 : 5 favored the formation of a dual-phase electrode consisting of Al(3)Ni(2) and Ni. As the Al content increased, the specific surface area of the as-sintered electrodes increased in the initial stage and then decreased. The formation of pores was closely related to the content of the residual Al phase after the laser sintering. The residual Al phase filled the pores when the Al content was high, leading to a lower pore size. In contrast, the liquid Al phase completely reacted with the Ni component, leaving a large number of pores at its original sites. The linked pores can serve as transport channels for Li(+) ions, provide mass sites for electrochemical reactions, and also buffer huge volume changes of the active material. Among the electrodes, the one with an Al/Ni ratio of 3 : 7 showed the best cycling/rate performance, i.e., a capacity of 522.8 mA h g(−1) by a current of 0.1 A g(−1) after 200 cycles, even holding to 338.4 mA h g(−1) by a big current impact at 2 A g(−1). It formed a metallurgical combination between the conductive network and the active material with multiple porous structures, which is helpful for the electrodes to provide high capacity and maintain structural stability during cycling. In addition, the average laser-sintering time of a single electrode was within 10 s, which is suitable for industrial mass production. The Royal Society of Chemistry 2022-05-03 /pmc/articles/PMC9064434/ /pubmed/35520142 http://dx.doi.org/10.1039/d1ra08735e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zhang, Xue
Wang, Cunshan
Yang, Wenfei
Gao, Dongdong
Zhang, Zhongyuan
Dong, Xinglong
Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries
title Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries
title_full Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries
title_fullStr Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries
title_full_unstemmed Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries
title_short Laser-sintering fabrication of integrated Al/Ni anodes for lithium-ion batteries
title_sort laser-sintering fabrication of integrated al/ni anodes for lithium-ion batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9064434/
https://www.ncbi.nlm.nih.gov/pubmed/35520142
http://dx.doi.org/10.1039/d1ra08735e
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