Cargando…
High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying Anode Material for Li-Ion Cells: Altered Lithium Storage Mechanism, Activation of Mg, and Origins of the Improved Cycling Stability
[Image: see text] Benefits emerging from applying high-entropy ceramics in Li-ion technology are already well-documented in a growing number of papers. However, an intriguing question may be formulated: how can the multicomponent solid solution-type material ensure stable electrochemical performance...
Autores principales: | , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2022
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9501916/ https://www.ncbi.nlm.nih.gov/pubmed/36094407 http://dx.doi.org/10.1021/acsami.2c11038 |
_version_ | 1784795584534675456 |
---|---|
author | Moździerz, Maciej Świerczek, Konrad Dąbrowa, Juliusz Gajewska, Marta Hanc, Anna Feng, Zhenhe Cieślak, Jakub Kądziołka-Gaweł, Mariola Płotek, Justyna Marzec, Mateusz Kulka, Andrzej |
author_facet | Moździerz, Maciej Świerczek, Konrad Dąbrowa, Juliusz Gajewska, Marta Hanc, Anna Feng, Zhenhe Cieślak, Jakub Kądziołka-Gaweł, Mariola Płotek, Justyna Marzec, Mateusz Kulka, Andrzej |
author_sort | Moździerz, Maciej |
collection | PubMed |
description | [Image: see text] Benefits emerging from applying high-entropy ceramics in Li-ion technology are already well-documented in a growing number of papers. However, an intriguing question may be formulated: how can the multicomponent solid solution-type material ensure stable electrochemical performance? Utilizing an example of nonequimolar Sn-based Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) high-entropy spinel oxide, we provide a comprehensive model explaining the observed very good cyclability. The material exhibits a high specific capacity above 600 mAh g(–1) under a specific current of 50 mA g(–1) and excellent capacity retention near 100% after 500 cycles under 200 mA g(–1). The stability originates from the conversion-alloying reversible reactivity of the amorphous matrix, which forms during the first lithiation from the initial high-entropy structure, and preserves the high level of cation disorder at the atomic scale. In the altered Li-storage mechanism in relation to the simple oxides, the unwanted aggregated metallic grains are not exsolved from the anode and therefore do not form highly lithiated phases characterized by large volumetric changes. Also, the electrochemical activity of Mg from the oxide matrix can be clearly observed. Because the studied compound was prepared by a conventional solid-state route, implementation of the presented approach is facile and appears usable for any oxide anode material containing a high-entropy mixture of elements. |
format | Online Article Text |
id | pubmed-9501916 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-95019162022-09-24 High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying Anode Material for Li-Ion Cells: Altered Lithium Storage Mechanism, Activation of Mg, and Origins of the Improved Cycling Stability Moździerz, Maciej Świerczek, Konrad Dąbrowa, Juliusz Gajewska, Marta Hanc, Anna Feng, Zhenhe Cieślak, Jakub Kądziołka-Gaweł, Mariola Płotek, Justyna Marzec, Mateusz Kulka, Andrzej ACS Appl Mater Interfaces [Image: see text] Benefits emerging from applying high-entropy ceramics in Li-ion technology are already well-documented in a growing number of papers. However, an intriguing question may be formulated: how can the multicomponent solid solution-type material ensure stable electrochemical performance? Utilizing an example of nonequimolar Sn-based Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) high-entropy spinel oxide, we provide a comprehensive model explaining the observed very good cyclability. The material exhibits a high specific capacity above 600 mAh g(–1) under a specific current of 50 mA g(–1) and excellent capacity retention near 100% after 500 cycles under 200 mA g(–1). The stability originates from the conversion-alloying reversible reactivity of the amorphous matrix, which forms during the first lithiation from the initial high-entropy structure, and preserves the high level of cation disorder at the atomic scale. In the altered Li-storage mechanism in relation to the simple oxides, the unwanted aggregated metallic grains are not exsolved from the anode and therefore do not form highly lithiated phases characterized by large volumetric changes. Also, the electrochemical activity of Mg from the oxide matrix can be clearly observed. Because the studied compound was prepared by a conventional solid-state route, implementation of the presented approach is facile and appears usable for any oxide anode material containing a high-entropy mixture of elements. American Chemical Society 2022-09-12 2022-09-21 /pmc/articles/PMC9501916/ /pubmed/36094407 http://dx.doi.org/10.1021/acsami.2c11038 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 | Moździerz, Maciej Świerczek, Konrad Dąbrowa, Juliusz Gajewska, Marta Hanc, Anna Feng, Zhenhe Cieślak, Jakub Kądziołka-Gaweł, Mariola Płotek, Justyna Marzec, Mateusz Kulka, Andrzej High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying Anode Material for Li-Ion Cells: Altered Lithium Storage Mechanism, Activation of Mg, and Origins of the Improved Cycling Stability |
title | High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying
Anode Material for Li-Ion Cells:
Altered Lithium Storage Mechanism, Activation of Mg, and Origins of
the Improved Cycling Stability |
title_full | High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying
Anode Material for Li-Ion Cells:
Altered Lithium Storage Mechanism, Activation of Mg, and Origins of
the Improved Cycling Stability |
title_fullStr | High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying
Anode Material for Li-Ion Cells:
Altered Lithium Storage Mechanism, Activation of Mg, and Origins of
the Improved Cycling Stability |
title_full_unstemmed | High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying
Anode Material for Li-Ion Cells:
Altered Lithium Storage Mechanism, Activation of Mg, and Origins of
the Improved Cycling Stability |
title_short | High-Entropy Sn(0.8)(Co(0.2)Mg(0.2)Mn(0.2)Ni(0.2)Zn(0.2))(2.2)O(4) Conversion-Alloying
Anode Material for Li-Ion Cells:
Altered Lithium Storage Mechanism, Activation of Mg, and Origins of
the Improved Cycling Stability |
title_sort | high-entropy sn(0.8)(co(0.2)mg(0.2)mn(0.2)ni(0.2)zn(0.2))(2.2)o(4) conversion-alloying
anode material for li-ion cells:
altered lithium storage mechanism, activation of mg, and origins of
the improved cycling stability |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9501916/ https://www.ncbi.nlm.nih.gov/pubmed/36094407 http://dx.doi.org/10.1021/acsami.2c11038 |
work_keys_str_mv | AT mozdzierzmaciej highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT swierczekkonrad highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT dabrowajuliusz highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT gajewskamarta highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT hancanna highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT fengzhenhe highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT cieslakjakub highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT kadziołkagawełmariola highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT płotekjustyna highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT marzecmateusz highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability AT kulkaandrzej highentropysn08co02mg02mn02ni02zn0222o4conversionalloyinganodematerialforliioncellsalteredlithiumstoragemechanismactivationofmgandoriginsoftheimprovedcyclingstability |