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A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability

Although the theoretical specific capacity of LiCoO(2) is as high as 274 mAh g(−1), the superior electrochemical performances of LiCoO(2) can be barely achieved due to the issues of severe structure destruction and LiCoO(2)/electrolyte interface side reactions when the upper cutoff voltage exceeds 4...

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Autores principales: Wang, Longlong, Ma, Jun, Wang, Chen, Yu, Xinrun, Liu, Ru, Jiang, Feng, Sun, Xingwei, Du, Aobing, Zhou, Xinhong, Cui, Guanglei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662074/
https://www.ncbi.nlm.nih.gov/pubmed/31380171
http://dx.doi.org/10.1002/advs.201900355
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author Wang, Longlong
Ma, Jun
Wang, Chen
Yu, Xinrun
Liu, Ru
Jiang, Feng
Sun, Xingwei
Du, Aobing
Zhou, Xinhong
Cui, Guanglei
author_facet Wang, Longlong
Ma, Jun
Wang, Chen
Yu, Xinrun
Liu, Ru
Jiang, Feng
Sun, Xingwei
Du, Aobing
Zhou, Xinhong
Cui, Guanglei
author_sort Wang, Longlong
collection PubMed
description Although the theoretical specific capacity of LiCoO(2) is as high as 274 mAh g(−1), the superior electrochemical performances of LiCoO(2) can be barely achieved due to the issues of severe structure destruction and LiCoO(2)/electrolyte interface side reactions when the upper cutoff voltage exceeds 4.5 V. Here, a bifunctional self‐stabilized strategy involving Al+Ti bulk codoping and gradient surface Mg doping is first proposed to synchronously enhance the high‐voltage (4.6 V) performances of LiCoO(2). The comodified LiCoO(2) (CMLCO) shows an initial discharge capacity of 224.9 mAh g(−1) and 78% capacity retention after 200 cycles between 3.0 and 4.6 V. Excitingly, the CMLCO also exhibits a specific capacity of up to 142 mAh g(−1) even at 10 C. Moreover, the long‐term cyclability of CMLCO/mesocarbon microbeads full cells is also enhanced significantly even at high temperature of 60 °C. The synergistic effects of this bifunctional self‐stabilized strategy on structural reversibility and interfacial stability are demonstrated by investigating the phase transitions and interface characteristics of cycled LiCoO(2). This work will be a milestone breakthrough in the development of high‐voltage LiCoO(2). It will also present an instructive contribution for resolving the big structural and interfacial challenges in other high‐energy‐density rechargeable batteries.
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spelling pubmed-66620742019-08-02 A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability Wang, Longlong Ma, Jun Wang, Chen Yu, Xinrun Liu, Ru Jiang, Feng Sun, Xingwei Du, Aobing Zhou, Xinhong Cui, Guanglei Adv Sci (Weinh) Full Papers Although the theoretical specific capacity of LiCoO(2) is as high as 274 mAh g(−1), the superior electrochemical performances of LiCoO(2) can be barely achieved due to the issues of severe structure destruction and LiCoO(2)/electrolyte interface side reactions when the upper cutoff voltage exceeds 4.5 V. Here, a bifunctional self‐stabilized strategy involving Al+Ti bulk codoping and gradient surface Mg doping is first proposed to synchronously enhance the high‐voltage (4.6 V) performances of LiCoO(2). The comodified LiCoO(2) (CMLCO) shows an initial discharge capacity of 224.9 mAh g(−1) and 78% capacity retention after 200 cycles between 3.0 and 4.6 V. Excitingly, the CMLCO also exhibits a specific capacity of up to 142 mAh g(−1) even at 10 C. Moreover, the long‐term cyclability of CMLCO/mesocarbon microbeads full cells is also enhanced significantly even at high temperature of 60 °C. The synergistic effects of this bifunctional self‐stabilized strategy on structural reversibility and interfacial stability are demonstrated by investigating the phase transitions and interface characteristics of cycled LiCoO(2). This work will be a milestone breakthrough in the development of high‐voltage LiCoO(2). It will also present an instructive contribution for resolving the big structural and interfacial challenges in other high‐energy‐density rechargeable batteries. John Wiley and Sons Inc. 2019-04-24 /pmc/articles/PMC6662074/ /pubmed/31380171 http://dx.doi.org/10.1002/advs.201900355 Text en © 2019 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Wang, Longlong
Ma, Jun
Wang, Chen
Yu, Xinrun
Liu, Ru
Jiang, Feng
Sun, Xingwei
Du, Aobing
Zhou, Xinhong
Cui, Guanglei
A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability
title A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability
title_full A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability
title_fullStr A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability
title_full_unstemmed A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability
title_short A Novel Bifunctional Self‐Stabilized Strategy Enabling 4.6 V LiCoO(2) with Excellent Long‐Term Cyclability and High‐Rate Capability
title_sort novel bifunctional self‐stabilized strategy enabling 4.6 v licoo(2) with excellent long‐term cyclability and high‐rate capability
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662074/
https://www.ncbi.nlm.nih.gov/pubmed/31380171
http://dx.doi.org/10.1002/advs.201900355
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