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Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries

Lithium-rich transition-metal layered oxides (LROs), such as Li(1.2)Mn(0.6)Ni(0.2)O(2), are promising cathode materials for application in Li-ion batteries, but the low initial coulombic efficiency, severe voltage fade and poor rate performance of the LROs restrict their commercial application. Here...

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Autores principales: Puheng, Yang, Wenxu, Wang, Xiaoliang, Zhang, Honglei, Li, Shichao, Zhang, Yalan, Xing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9091290/
https://www.ncbi.nlm.nih.gov/pubmed/35558045
http://dx.doi.org/10.1039/c8ra06086j
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author Puheng, Yang
Wenxu, Wang
Xiaoliang, Zhang
Honglei, Li
Shichao, Zhang
Yalan, Xing
author_facet Puheng, Yang
Wenxu, Wang
Xiaoliang, Zhang
Honglei, Li
Shichao, Zhang
Yalan, Xing
author_sort Puheng, Yang
collection PubMed
description Lithium-rich transition-metal layered oxides (LROs), such as Li(1.2)Mn(0.6)Ni(0.2)O(2), are promising cathode materials for application in Li-ion batteries, but the low initial coulombic efficiency, severe voltage fade and poor rate performance of the LROs restrict their commercial application. Herein, a self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane was synthesized as a binder-free cathode for Li-ion batteries. Integrating the graphene membrane with Li(1.2)Mn(0.6)Ni(0.2)O(2) forming a Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene structure significantly increases the surface areas and pore volumes of the cathode, as well as the reversibility of oxygen redox during the charge–discharge process. The initial discharge capacity of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane is ∼270 mA h g(−1) (∼240 mA h g(−1) for Li(1.2)Mn(0.6)Ni(0.2)O(2)) and its initial coulombic efficiency is 90% (72% for Li(1.2)Mn(0.6)Ni(0.2)O(2)) at a current density of 40 mA g(−1). The capacity retention of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane remains at 88% at 40 mA g(−1) after 80 cycles, and the rate performance is largely improved compared with that of the pristine Li(1.2)Mn(0.6)Ni(0.2)O(2). The improved performance of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane is ascribed to the lower charge-transfer resistance and solid electrolyte interphase resistance of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane compared to that of Li(1.2)Mn(0.6)Ni(0.2)O(2). Moreover, the lithium ion diffusion of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane is enhanced by three orders of magnitude compared to that of Li(1.2)Mn(0.6)Ni(0.2)O(2). This work may provide a new avenue to improve the electrochemical performance of LROs through tuning the oxygen redox progress during cycling.
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spelling pubmed-90912902022-05-11 Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries Puheng, Yang Wenxu, Wang Xiaoliang, Zhang Honglei, Li Shichao, Zhang Yalan, Xing RSC Adv Chemistry Lithium-rich transition-metal layered oxides (LROs), such as Li(1.2)Mn(0.6)Ni(0.2)O(2), are promising cathode materials for application in Li-ion batteries, but the low initial coulombic efficiency, severe voltage fade and poor rate performance of the LROs restrict their commercial application. Herein, a self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane was synthesized as a binder-free cathode for Li-ion batteries. Integrating the graphene membrane with Li(1.2)Mn(0.6)Ni(0.2)O(2) forming a Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene structure significantly increases the surface areas and pore volumes of the cathode, as well as the reversibility of oxygen redox during the charge–discharge process. The initial discharge capacity of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane is ∼270 mA h g(−1) (∼240 mA h g(−1) for Li(1.2)Mn(0.6)Ni(0.2)O(2)) and its initial coulombic efficiency is 90% (72% for Li(1.2)Mn(0.6)Ni(0.2)O(2)) at a current density of 40 mA g(−1). The capacity retention of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane remains at 88% at 40 mA g(−1) after 80 cycles, and the rate performance is largely improved compared with that of the pristine Li(1.2)Mn(0.6)Ni(0.2)O(2). The improved performance of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane is ascribed to the lower charge-transfer resistance and solid electrolyte interphase resistance of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane compared to that of Li(1.2)Mn(0.6)Ni(0.2)O(2). Moreover, the lithium ion diffusion of the Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane is enhanced by three orders of magnitude compared to that of Li(1.2)Mn(0.6)Ni(0.2)O(2). This work may provide a new avenue to improve the electrochemical performance of LROs through tuning the oxygen redox progress during cycling. The Royal Society of Chemistry 2018-11-28 /pmc/articles/PMC9091290/ /pubmed/35558045 http://dx.doi.org/10.1039/c8ra06086j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Puheng, Yang
Wenxu, Wang
Xiaoliang, Zhang
Honglei, Li
Shichao, Zhang
Yalan, Xing
Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries
title Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries
title_full Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries
title_fullStr Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries
title_full_unstemmed Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries
title_short Self-standing Li(1.2)Mn(0.6)Ni(0.2)O(2)/graphene membrane as a binder-free cathode for Li-ion batteries
title_sort self-standing li(1.2)mn(0.6)ni(0.2)o(2)/graphene membrane as a binder-free cathode for li-ion batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9091290/
https://www.ncbi.nlm.nih.gov/pubmed/35558045
http://dx.doi.org/10.1039/c8ra06086j
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