Aluminum vacancy‐rich MOF‐derived carbon nanosheets for high‐capacity and long‐life aqueous aluminum‐ion battery

Fuente: Wiley Open Access
Enregistré dans:
Détails bibliographiques
Auteurs principaux: Jiuzeng Jin, Ruiying Zhang, Xiaodong Zhi, Dongxin Liu, Yun Wang, Zhongmin Feng, Ting Sun
Format: Artículo Open Access
Publié: Wiley 2024
Sujets:
Accès en ligne:
Tags: Ajouter un tag
Pas de tags, Soyez le premier à ajouter un tag!
_version_ 1867007184030662656
author Jiuzeng Jin
Ruiying Zhang
Xiaodong Zhi
Dongxin Liu
Yun Wang
Zhongmin Feng
Ting Sun
author_facet Jiuzeng Jin
Ruiying Zhang
Xiaodong Zhi
Dongxin Liu
Yun Wang
Zhongmin Feng
Ting Sun
Jiuzeng Jin
Ruiying Zhang
Xiaodong Zhi
Dongxin Liu
Yun Wang
Zhongmin Feng
Ting Sun
collection Wiley Open Access
contents Aluminum vacancy‐rich MOF‐derived carbon nanosheets for high‐capacity and long‐life aqueous aluminum‐ion battery Jiuzeng Jin Ruiying Zhang Xiaodong Zhi Dongxin Liu Yun Wang Zhongmin Feng Ting Sun EcoEnergy AbstractEco‐friendly and safe aqueous aluminum‐ion batteries as energy storage devices with low economic burden, high stability and fast ion transport have been lucubrated deeply in response to the call for sustainable development. However, the poor cycle performance caused by difficult (de‐)intercalation hinders the development prospect. In this work, the aluminum vacancy‐rich MOF‐derived carbon is constructed to achieve reversible aluminum storage during the charge‐discharge cycles. The MOF‐derived carbon with anti‐stacking waxberry‐like structure exhibits high capacity (282.1 mAh g−1 at 50 mA g−1) and long cycle performance (84.4% capacity retention rate at 1 A g−1 after 5000 cycles). Further investigations demonstrate that (de‐)intercalation occurs among the vacancies of carbon nanosheets in the form of hydrated aluminum ions. Meanwhile, the introduced nitrogen as energy storage sites contributes part of the capacity. The proposed aluminum vacancy engineering improves the current situation of the capacitive energy storage mode for 2D carbon materials, which may exploit an advanced theoretical model for the design of aqueous batteries. 10.1002/ece2.49 http://creativecommons.org/licenses/by/4.0/
doi_str_mv 10.1002/ece2.49
format Artículo Open Access
id wiley_oa_10_1002_ece2_49
institution Wiley Open Access
license_str_mv http://creativecommons.org/licenses/by/4.0/
publishDate 2024
publisher Wiley
record_format wiley_oa
spellingShingle Aluminum vacancy‐rich MOF‐derived carbon nanosheets for high‐capacity and long‐life aqueous aluminum‐ion battery
Jiuzeng Jin
Ruiying Zhang
Xiaodong Zhi
Dongxin Liu
Yun Wang
Zhongmin Feng
Ting Sun
EcoEnergy
Aluminum vacancy‐rich MOF‐derived carbon nanosheets for high‐capacity and long‐life aqueous aluminum‐ion battery Jiuzeng Jin Ruiying Zhang Xiaodong Zhi Dongxin Liu Yun Wang Zhongmin Feng Ting Sun EcoEnergy AbstractEco‐friendly and safe aqueous aluminum‐ion batteries as energy storage devices with low economic burden, high stability and fast ion transport have been lucubrated deeply in response to the call for sustainable development. However, the poor cycle performance caused by difficult (de‐)intercalation hinders the development prospect. In this work, the aluminum vacancy‐rich MOF‐derived carbon is constructed to achieve reversible aluminum storage during the charge‐discharge cycles. The MOF‐derived carbon with anti‐stacking waxberry‐like structure exhibits high capacity (282.1 mAh g−1 at 50 mA g−1) and long cycle performance (84.4% capacity retention rate at 1 A g−1 after 5000 cycles). Further investigations demonstrate that (de‐)intercalation occurs among the vacancies of carbon nanosheets in the form of hydrated aluminum ions. Meanwhile, the introduced nitrogen as energy storage sites contributes part of the capacity. The proposed aluminum vacancy engineering improves the current situation of the capacitive energy storage mode for 2D carbon materials, which may exploit an advanced theoretical model for the design of aqueous batteries. 10.1002/ece2.49 http://creativecommons.org/licenses/by/4.0/
title Aluminum vacancy‐rich MOF‐derived carbon nanosheets for high‐capacity and long‐life aqueous aluminum‐ion battery
topic EcoEnergy
url https://onlinelibrary.wiley.com/doi/10.1002/ece2.49