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Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage

[Image: see text] Potassium ion hybrid capacitors (KICs) have drawn tremendous attention for large-scale energy storage applications because of their high energy and power densities and the abundance of potassium sources. However, achieving KICs with high capacity and long lifespan remains challengi...

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Autores principales: Kuai, Xiaoxiao, Li, Ke, Chen, Jianmei, Wang, Hao, Yao, Junyi, Chiang, Chao-Lung, Liu, Tingting, Ye, Hanzhang, Zhao, Jianqing, Lin, Yan-Gu, Zhang, Labao, Nicolosi, Valeria, Gao, Lijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8793133/
https://www.ncbi.nlm.nih.gov/pubmed/35012309
http://dx.doi.org/10.1021/acsnano.1c09935
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author Kuai, Xiaoxiao
Li, Ke
Chen, Jianmei
Wang, Hao
Yao, Junyi
Chiang, Chao-Lung
Liu, Tingting
Ye, Hanzhang
Zhao, Jianqing
Lin, Yan-Gu
Zhang, Labao
Nicolosi, Valeria
Gao, Lijun
author_facet Kuai, Xiaoxiao
Li, Ke
Chen, Jianmei
Wang, Hao
Yao, Junyi
Chiang, Chao-Lung
Liu, Tingting
Ye, Hanzhang
Zhao, Jianqing
Lin, Yan-Gu
Zhang, Labao
Nicolosi, Valeria
Gao, Lijun
author_sort Kuai, Xiaoxiao
collection PubMed
description [Image: see text] Potassium ion hybrid capacitors (KICs) have drawn tremendous attention for large-scale energy storage applications because of their high energy and power densities and the abundance of potassium sources. However, achieving KICs with high capacity and long lifespan remains challenging because the large size of potassium ions causes sluggish kinetics and fast structural pulverization of electrodes. Here, we report a composite anode of VO(2)–V(2)O(5) nanoheterostructures captured by a 3D N-doped carbon network (VO(2)–V(2)O(5)/NC) that exhibits a reversible capacity of 252 mAh g(–1) at 1 A g(–1) over 1600 cycles and a rate performance with 108 mAh g(–1) at 10 A g(–1). Quantitative kinetics analyses demonstrate that such great rate capability and cyclability are enabled by the capacitive-dominated potassium storage mechanism in the interfacial engineered VO(2)–V(2)O(5) nanoheterostructures. The further fabricated full KIC cell consisting of a VO(2)–V(2)O(5)/NC anode and an active carbon cathode delivers a high operating voltage window of 4.0 V and energy and power densities up to 154 Wh kg(–1) and 10 000 W kg(–1), respectively, surpassing most state-of-the-art KICs.
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spelling pubmed-87931332022-01-28 Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage Kuai, Xiaoxiao Li, Ke Chen, Jianmei Wang, Hao Yao, Junyi Chiang, Chao-Lung Liu, Tingting Ye, Hanzhang Zhao, Jianqing Lin, Yan-Gu Zhang, Labao Nicolosi, Valeria Gao, Lijun ACS Nano [Image: see text] Potassium ion hybrid capacitors (KICs) have drawn tremendous attention for large-scale energy storage applications because of their high energy and power densities and the abundance of potassium sources. However, achieving KICs with high capacity and long lifespan remains challenging because the large size of potassium ions causes sluggish kinetics and fast structural pulverization of electrodes. Here, we report a composite anode of VO(2)–V(2)O(5) nanoheterostructures captured by a 3D N-doped carbon network (VO(2)–V(2)O(5)/NC) that exhibits a reversible capacity of 252 mAh g(–1) at 1 A g(–1) over 1600 cycles and a rate performance with 108 mAh g(–1) at 10 A g(–1). Quantitative kinetics analyses demonstrate that such great rate capability and cyclability are enabled by the capacitive-dominated potassium storage mechanism in the interfacial engineered VO(2)–V(2)O(5) nanoheterostructures. The further fabricated full KIC cell consisting of a VO(2)–V(2)O(5)/NC anode and an active carbon cathode delivers a high operating voltage window of 4.0 V and energy and power densities up to 154 Wh kg(–1) and 10 000 W kg(–1), respectively, surpassing most state-of-the-art KICs. American Chemical Society 2022-01-11 2022-01-25 /pmc/articles/PMC8793133/ /pubmed/35012309 http://dx.doi.org/10.1021/acsnano.1c09935 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kuai, Xiaoxiao
Li, Ke
Chen, Jianmei
Wang, Hao
Yao, Junyi
Chiang, Chao-Lung
Liu, Tingting
Ye, Hanzhang
Zhao, Jianqing
Lin, Yan-Gu
Zhang, Labao
Nicolosi, Valeria
Gao, Lijun
Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage
title Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage
title_full Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage
title_fullStr Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage
title_full_unstemmed Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage
title_short Interfacial Engineered Vanadium Oxide Nanoheterostructures Synchronizing High-Energy and Long-Term Potassium-Ion Storage
title_sort interfacial engineered vanadium oxide nanoheterostructures synchronizing high-energy and long-term potassium-ion storage
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8793133/
https://www.ncbi.nlm.nih.gov/pubmed/35012309
http://dx.doi.org/10.1021/acsnano.1c09935
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