Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries

Aqueous aluminum metal batteries (AMBs) are regarded as one of the most sustainable energy storage systems among post-lithium-ion candidates, which is attributable to their highest theoretical volumetric capacity, inherent safe operation, and low cost. Yet, the development of aqueous AMBs is plagued...

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Main Authors: Yan, Chunshuang, Lv, Chade, Jia, Bei-Er, Zhong, Lixiang, Cao, Xun, Guo, Xuelin, Liu, Hengjie, Xu, Wenjie, Liu, Daobin, Yang, Lan, Liu, Jiawei, Hng, Huey Hoon, Chen, Wei, Song, Li, Li, Shuzhou, Liu, Zheng, Yan, Qingyu, Yu, Guihua
Other Authors: School of Materials Science and Engineering
Format: Article
Language:English
Published: 2022
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Online Access:https://hdl.handle.net/10356/163211
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1632112022-11-29T01:41:41Z Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries Yan, Chunshuang Lv, Chade Jia, Bei-Er Zhong, Lixiang Cao, Xun Guo, Xuelin Liu, Hengjie Xu, Wenjie Liu, Daobin Yang, Lan Liu, Jiawei Hng, Huey Hoon Chen, Wei Song, Li Li, Shuzhou Liu, Zheng Yan, Qingyu Yu, Guihua School of Materials Science and Engineering Institute of Materials Research and Engineering, A*STAR Engineering::Materials Aluminum Alloys Amorphizations Aqueous aluminum metal batteries (AMBs) are regarded as one of the most sustainable energy storage systems among post-lithium-ion candidates, which is attributable to their highest theoretical volumetric capacity, inherent safe operation, and low cost. Yet, the development of aqueous AMBs is plagued by the incapable aluminum plating in an aqueous solution and severe parasitic reactions, which results in the limited discharge voltage, thus making the development of aqueous AMBs unsuccessful so far. Here, we demonstrate that amorphization is an effective strategy to tackle these critical issues of a metallic Al anode by shifting the reduction potential for Al deposition. The amorphous aluminum (a-Al) interfacial layer is triggered by an in situ lithium-ion alloying/dealloying process on a metallic Al substrate with low strength. Unveiled by experimental and theoretical investigations, the amorphous structure greatly lowers the Al nucleation energy barrier, which forces the Al deposition competitive to the electron-stealing hydrogen evolution reaction (HER). Simultaneously, the inhibited HER mitigates the passivation, promoting interfacial ion transfer kinetics and enabling steady aluminum plating/stripping for 800 h in the symmetric cell. The resultant multiple full cells using Al@a-Al anodes deliver approximately a 0.6 V increase in the discharge voltage plateau compared to that of bare Al-based cells, which far outperform all reported aqueous AMBs. In both symmetric cells and full cells, the excellent electrochemical performances are achieved in a noncorrosive, low-cost, and fluorine-free Al2(SO4)3 electrolyte, which is ecofriendly and can be easily adapted for sustainable large-scale applications. This work brings an intriguing picture of the design of metallic anodes for reversible and high-voltage AMBs. Agency for Science, Technology and Research (A*STAR) Ministry of Education (MOE) C.Y. acknowledges funding supported by the National Natural Science Foundation of China (grant no. 52101246) and the Fundamental Research Funds for the Central Universities (grant no. 5710010721). Q.Y. acknowledges funding support from the Singapore MOE AcRF Tier 1 grant no. 2020-T1-001- 031 and the Singapore A*STAR project A19D9a0096. G.Y. acknowledges funding support from the Camille Dreyfus Teacher-Scholar Award and the Welch Foundation Award F1861. 2022-11-29T01:41:41Z 2022-11-29T01:41:41Z 2022 Journal Article Yan, C., Lv, C., Jia, B., Zhong, L., Cao, X., Guo, X., Liu, H., Xu, W., Liu, D., Yang, L., Liu, J., Hng, H. H., Chen, W., Song, L., Li, S., Liu, Z., Yan, Q. & Yu, G. (2022). Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries. Journal of the American Chemical Society, 144(25), 11444-11455. https://dx.doi.org/10.1021/jacs.2c04820 0002-7863 https://hdl.handle.net/10356/163211 10.1021/jacs.2c04820 35723429 2-s2.0-85133143941 25 144 11444 11455 en MOE 2020-T1-001-031 A19D9a0096 Journal of the American Chemical Society © 2022 American Chemical Society. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials
Aluminum Alloys
Amorphizations
spellingShingle Engineering::Materials
Aluminum Alloys
Amorphizations
Yan, Chunshuang
Lv, Chade
Jia, Bei-Er
Zhong, Lixiang
Cao, Xun
Guo, Xuelin
Liu, Hengjie
Xu, Wenjie
Liu, Daobin
Yang, Lan
Liu, Jiawei
Hng, Huey Hoon
Chen, Wei
Song, Li
Li, Shuzhou
Liu, Zheng
Yan, Qingyu
Yu, Guihua
Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
description Aqueous aluminum metal batteries (AMBs) are regarded as one of the most sustainable energy storage systems among post-lithium-ion candidates, which is attributable to their highest theoretical volumetric capacity, inherent safe operation, and low cost. Yet, the development of aqueous AMBs is plagued by the incapable aluminum plating in an aqueous solution and severe parasitic reactions, which results in the limited discharge voltage, thus making the development of aqueous AMBs unsuccessful so far. Here, we demonstrate that amorphization is an effective strategy to tackle these critical issues of a metallic Al anode by shifting the reduction potential for Al deposition. The amorphous aluminum (a-Al) interfacial layer is triggered by an in situ lithium-ion alloying/dealloying process on a metallic Al substrate with low strength. Unveiled by experimental and theoretical investigations, the amorphous structure greatly lowers the Al nucleation energy barrier, which forces the Al deposition competitive to the electron-stealing hydrogen evolution reaction (HER). Simultaneously, the inhibited HER mitigates the passivation, promoting interfacial ion transfer kinetics and enabling steady aluminum plating/stripping for 800 h in the symmetric cell. The resultant multiple full cells using Al@a-Al anodes deliver approximately a 0.6 V increase in the discharge voltage plateau compared to that of bare Al-based cells, which far outperform all reported aqueous AMBs. In both symmetric cells and full cells, the excellent electrochemical performances are achieved in a noncorrosive, low-cost, and fluorine-free Al2(SO4)3 electrolyte, which is ecofriendly and can be easily adapted for sustainable large-scale applications. This work brings an intriguing picture of the design of metallic anodes for reversible and high-voltage AMBs.
author2 School of Materials Science and Engineering
author_facet School of Materials Science and Engineering
Yan, Chunshuang
Lv, Chade
Jia, Bei-Er
Zhong, Lixiang
Cao, Xun
Guo, Xuelin
Liu, Hengjie
Xu, Wenjie
Liu, Daobin
Yang, Lan
Liu, Jiawei
Hng, Huey Hoon
Chen, Wei
Song, Li
Li, Shuzhou
Liu, Zheng
Yan, Qingyu
Yu, Guihua
format Article
author Yan, Chunshuang
Lv, Chade
Jia, Bei-Er
Zhong, Lixiang
Cao, Xun
Guo, Xuelin
Liu, Hengjie
Xu, Wenjie
Liu, Daobin
Yang, Lan
Liu, Jiawei
Hng, Huey Hoon
Chen, Wei
Song, Li
Li, Shuzhou
Liu, Zheng
Yan, Qingyu
Yu, Guihua
author_sort Yan, Chunshuang
title Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
title_short Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
title_full Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
title_fullStr Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
title_full_unstemmed Reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
title_sort reversible al metal anodes enabled by amorphization for aqueous aluminum batteries
publishDate 2022
url https://hdl.handle.net/10356/163211
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