Cargando…

Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering

Mullite–cordierite ceramic saggar is a necessary consumable material used in the synthesis process of LiCoO(2) that is easily eroded during application. In our study, we systematically investigated the characteristics and surface corrosion behavior of waste saggar samples. We divided the cross secti...

Descripción completa

Detalles Bibliográficos
Autores principales: Sun, Zhenhua, Li, Shaopeng, Li, Huiquan, Liu, Mingkun, Li, Zhanbing, Liu, Xianjie, Liu, Mingyong, Liu, Qiyun, Huang, Zhaohui
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865777/
https://www.ncbi.nlm.nih.gov/pubmed/36676390
http://dx.doi.org/10.3390/ma16020653
_version_ 1784875923313524736
author Sun, Zhenhua
Li, Shaopeng
Li, Huiquan
Liu, Mingkun
Li, Zhanbing
Liu, Xianjie
Liu, Mingyong
Liu, Qiyun
Huang, Zhaohui
author_facet Sun, Zhenhua
Li, Shaopeng
Li, Huiquan
Liu, Mingkun
Li, Zhanbing
Liu, Xianjie
Liu, Mingyong
Liu, Qiyun
Huang, Zhaohui
author_sort Sun, Zhenhua
collection PubMed
description Mullite–cordierite ceramic saggar is a necessary consumable material used in the synthesis process of LiCoO(2) that is easily eroded during application. In our study, we systematically investigated the characteristics and surface corrosion behavior of waste saggar samples. We divided the cross sections of waste saggar into the attached layer, hardened layer, permeability layer, and matrix layer. Then, we examined the high-temperature solid-state reactions between saggar powder and lithium carbonate or cobalt oxide to identify erosion reactants correlating with an increase in the number of recycled saggars. The results of time-of-flight secondary ion mass spectrometric analysis (TOF-SIMS) prove that the maximum erosion penetration of lithium can reach 2 mm. However, our morphology and elemental distribution analysis results show that the erosion penetration of cobalt was only 200 μm. When enough lithium carbonate reacted, lithium aluminate and lithium silicate were the main phases. Our X-ray computed tomography (X-ray CT) analysis results show that the change in phase volume before and after the reaction, including the generation of oxygen and carbon dioxide gas, led to the internal crack expansion of the material–saggar interface. Our results can contribute to improving saggar and upgrading waste saggar utilization technology.
format Online
Article
Text
id pubmed-9865777
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-98657772023-01-22 Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering Sun, Zhenhua Li, Shaopeng Li, Huiquan Liu, Mingkun Li, Zhanbing Liu, Xianjie Liu, Mingyong Liu, Qiyun Huang, Zhaohui Materials (Basel) Article Mullite–cordierite ceramic saggar is a necessary consumable material used in the synthesis process of LiCoO(2) that is easily eroded during application. In our study, we systematically investigated the characteristics and surface corrosion behavior of waste saggar samples. We divided the cross sections of waste saggar into the attached layer, hardened layer, permeability layer, and matrix layer. Then, we examined the high-temperature solid-state reactions between saggar powder and lithium carbonate or cobalt oxide to identify erosion reactants correlating with an increase in the number of recycled saggars. The results of time-of-flight secondary ion mass spectrometric analysis (TOF-SIMS) prove that the maximum erosion penetration of lithium can reach 2 mm. However, our morphology and elemental distribution analysis results show that the erosion penetration of cobalt was only 200 μm. When enough lithium carbonate reacted, lithium aluminate and lithium silicate were the main phases. Our X-ray computed tomography (X-ray CT) analysis results show that the change in phase volume before and after the reaction, including the generation of oxygen and carbon dioxide gas, led to the internal crack expansion of the material–saggar interface. Our results can contribute to improving saggar and upgrading waste saggar utilization technology. MDPI 2023-01-09 /pmc/articles/PMC9865777/ /pubmed/36676390 http://dx.doi.org/10.3390/ma16020653 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sun, Zhenhua
Li, Shaopeng
Li, Huiquan
Liu, Mingkun
Li, Zhanbing
Liu, Xianjie
Liu, Mingyong
Liu, Qiyun
Huang, Zhaohui
Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering
title Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering
title_full Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering
title_fullStr Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering
title_full_unstemmed Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering
title_short Corrosion Behavior of Cobalt Oxide and Lithium Carbonate on Mullite–Cordierite Saggar Used for Lithium Battery Cathode Material Sintering
title_sort corrosion behavior of cobalt oxide and lithium carbonate on mullite–cordierite saggar used for lithium battery cathode material sintering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9865777/
https://www.ncbi.nlm.nih.gov/pubmed/36676390
http://dx.doi.org/10.3390/ma16020653
work_keys_str_mv AT sunzhenhua corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT lishaopeng corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT lihuiquan corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT liumingkun corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT lizhanbing corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT liuxianjie corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT liumingyong corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT liuqiyun corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering
AT huangzhaohui corrosionbehaviorofcobaltoxideandlithiumcarbonateonmullitecordieritesaggarusedforlithiumbatterycathodematerialsintering