Cargando…
A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode
LiNi(0.8)Co(0.1)Mn(0.1)O(2) cathodes suffer from severe bulk structural and interfacial degradation during battery operation. To address these issues, a three in one strategy using ZrB(2) as the dopant is proposed for constructing a stable Ni‐rich cathode. In this strategy, Zr and B are doped into t...
Autores principales: | , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
John Wiley and Sons Inc.
2020
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7816706/ https://www.ncbi.nlm.nih.gov/pubmed/33510998 http://dx.doi.org/10.1002/advs.202001809 |
_version_ | 1783638496118833152 |
---|---|
author | Feng, Ze Rajagopalan, Ranjusha Zhang, Shan Sun, Dan Tang, Yougen Ren, Yu Wang, Haiyan |
author_facet | Feng, Ze Rajagopalan, Ranjusha Zhang, Shan Sun, Dan Tang, Yougen Ren, Yu Wang, Haiyan |
author_sort | Feng, Ze |
collection | PubMed |
description | LiNi(0.8)Co(0.1)Mn(0.1)O(2) cathodes suffer from severe bulk structural and interfacial degradation during battery operation. To address these issues, a three in one strategy using ZrB(2) as the dopant is proposed for constructing a stable Ni‐rich cathode. In this strategy, Zr and B are doped into the bulk of LiNi(0.8)Co(0.1)Mn(0.1)O(2), respectively, which is beneficial to stabilize the crystal structure and mitigate the microcracks. Meanwhile, during the high‐temperature calcination, some of the remaining Zr at the surface combined with the surface lithium source to form lithium zirconium coatings, which physically protect the surface and suppress the interfacial phase transition upon cycling. Thus, the 0.2 mol% ZrB(2)‐LiNi(0.8)Co(0.1)Mn(0.1)O(2) cathode delivers a discharge capacity of 183.1 mAh g(−1) after 100 cycles at 50 °C (1C, 3.0–4.3 V), with an outstanding capacity retention of 88.1%. The cycling stability improvement is more obvious when the cut‐off voltage increased to 4.4 V. Density functional theory confirms that the superior structural stability and excellent thermal stability are attributed to the higher exchange energy of Li/Ni exchange and the higher formation energy of oxygen vacancies by ZrB(2) doping. The present work offers a three in one strategy to simultaneously stabilize the crystal structure and surface for the Ni‐rich cathode via a facile preparation process. |
format | Online Article Text |
id | pubmed-7816706 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | John Wiley and Sons Inc. |
record_format | MEDLINE/PubMed |
spelling | pubmed-78167062021-01-27 A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode Feng, Ze Rajagopalan, Ranjusha Zhang, Shan Sun, Dan Tang, Yougen Ren, Yu Wang, Haiyan Adv Sci (Weinh) Full Papers LiNi(0.8)Co(0.1)Mn(0.1)O(2) cathodes suffer from severe bulk structural and interfacial degradation during battery operation. To address these issues, a three in one strategy using ZrB(2) as the dopant is proposed for constructing a stable Ni‐rich cathode. In this strategy, Zr and B are doped into the bulk of LiNi(0.8)Co(0.1)Mn(0.1)O(2), respectively, which is beneficial to stabilize the crystal structure and mitigate the microcracks. Meanwhile, during the high‐temperature calcination, some of the remaining Zr at the surface combined with the surface lithium source to form lithium zirconium coatings, which physically protect the surface and suppress the interfacial phase transition upon cycling. Thus, the 0.2 mol% ZrB(2)‐LiNi(0.8)Co(0.1)Mn(0.1)O(2) cathode delivers a discharge capacity of 183.1 mAh g(−1) after 100 cycles at 50 °C (1C, 3.0–4.3 V), with an outstanding capacity retention of 88.1%. The cycling stability improvement is more obvious when the cut‐off voltage increased to 4.4 V. Density functional theory confirms that the superior structural stability and excellent thermal stability are attributed to the higher exchange energy of Li/Ni exchange and the higher formation energy of oxygen vacancies by ZrB(2) doping. The present work offers a three in one strategy to simultaneously stabilize the crystal structure and surface for the Ni‐rich cathode via a facile preparation process. John Wiley and Sons Inc. 2020-11-27 /pmc/articles/PMC7816706/ /pubmed/33510998 http://dx.doi.org/10.1002/advs.202001809 Text en © 2020 The Authors. Advanced Science published by Wiley‐VCH GmbH 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 Feng, Ze Rajagopalan, Ranjusha Zhang, Shan Sun, Dan Tang, Yougen Ren, Yu Wang, Haiyan A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode |
title | A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode |
title_full | A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode |
title_fullStr | A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode |
title_full_unstemmed | A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode |
title_short | A Three in One Strategy to Achieve Zirconium Doping, Boron Doping, and Interfacial Coating for Stable LiNi(0.8)Co(0.1)Mn(0.1)O(2) Cathode |
title_sort | three in one strategy to achieve zirconium doping, boron doping, and interfacial coating for stable lini(0.8)co(0.1)mn(0.1)o(2) cathode |
topic | Full Papers |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7816706/ https://www.ncbi.nlm.nih.gov/pubmed/33510998 http://dx.doi.org/10.1002/advs.202001809 |
work_keys_str_mv | AT fengze athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT rajagopalanranjusha athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT zhangshan athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT sundan athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT tangyougen athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT renyu athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT wanghaiyan athreeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT fengze threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT rajagopalanranjusha threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT zhangshan threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT sundan threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT tangyougen threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT renyu threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode AT wanghaiyan threeinonestrategytoachievezirconiumdopingborondopingandinterfacialcoatingforstablelini08co01mn01o2cathode |