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Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries

Composite positive electrode materials (1−x) LiNi(0.8)Mn(0.1)Co(0.1)O(2)∙xLi(2)SO(4) (x = 0.002–0.005) for Li-ion batteries have been synthesized via conventional hydroxide or carbonate coprecipitation routes with subsequent high-temperature lithiation in either air or oxygen atmosphere. A comparati...

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Autores principales: Savina, Aleksandra A., Orlova, Elena D., Morozov, Anatolii V., Luchkin, Sergey Yu., Abakumov, Artem M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7759786/
https://www.ncbi.nlm.nih.gov/pubmed/33260445
http://dx.doi.org/10.3390/nano10122381
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author Savina, Aleksandra A.
Orlova, Elena D.
Morozov, Anatolii V.
Luchkin, Sergey Yu.
Abakumov, Artem M.
author_facet Savina, Aleksandra A.
Orlova, Elena D.
Morozov, Anatolii V.
Luchkin, Sergey Yu.
Abakumov, Artem M.
author_sort Savina, Aleksandra A.
collection PubMed
description Composite positive electrode materials (1−x) LiNi(0.8)Mn(0.1)Co(0.1)O(2)∙xLi(2)SO(4) (x = 0.002–0.005) for Li-ion batteries have been synthesized via conventional hydroxide or carbonate coprecipitation routes with subsequent high-temperature lithiation in either air or oxygen atmosphere. A comparative study of the materials prepared from transition metal sulfates (i.e., containing sulfur) and acetates (i.e., sulfur-free) with powder X-ray diffraction, electron diffraction, high angle annular dark field transmission electron microscopy, energy-dispersive X-ray spectroscopy, and electron energy loss spectroscopy revealed that the sulfur-containing species occur as amorphous Li(2)SO(4) at the grain boundaries and intergranular contacts of the primary NMC811 crystallites. This results in a noticeable enhancement of rate capability and capacity retention over prolonged charge/discharge cycling compared to their sulfur-free analogs. The improvement is attributed to suppressing the high voltage phase transition and the associated accumulation of anti-site disorder upon cycling and improving the secondary agglomerates’ mechanical integrity by increasing interfacial fracture toughness through linking primary NMC811 particles with soft Li(2)SO(4) binder, as demonstrated with nanoindentation experiments. As the synthesis of the (1−x) LiNi(0.8)Mn(0.1)Co(0.1)O(2)∙xLi(2)SO(4) composites do not require additional operational steps to introduce sulfur, these electrode materials might demonstrate high potential for commercialization.
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spelling pubmed-77597862020-12-26 Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries Savina, Aleksandra A. Orlova, Elena D. Morozov, Anatolii V. Luchkin, Sergey Yu. Abakumov, Artem M. Nanomaterials (Basel) Article Composite positive electrode materials (1−x) LiNi(0.8)Mn(0.1)Co(0.1)O(2)∙xLi(2)SO(4) (x = 0.002–0.005) for Li-ion batteries have been synthesized via conventional hydroxide or carbonate coprecipitation routes with subsequent high-temperature lithiation in either air or oxygen atmosphere. A comparative study of the materials prepared from transition metal sulfates (i.e., containing sulfur) and acetates (i.e., sulfur-free) with powder X-ray diffraction, electron diffraction, high angle annular dark field transmission electron microscopy, energy-dispersive X-ray spectroscopy, and electron energy loss spectroscopy revealed that the sulfur-containing species occur as amorphous Li(2)SO(4) at the grain boundaries and intergranular contacts of the primary NMC811 crystallites. This results in a noticeable enhancement of rate capability and capacity retention over prolonged charge/discharge cycling compared to their sulfur-free analogs. The improvement is attributed to suppressing the high voltage phase transition and the associated accumulation of anti-site disorder upon cycling and improving the secondary agglomerates’ mechanical integrity by increasing interfacial fracture toughness through linking primary NMC811 particles with soft Li(2)SO(4) binder, as demonstrated with nanoindentation experiments. As the synthesis of the (1−x) LiNi(0.8)Mn(0.1)Co(0.1)O(2)∙xLi(2)SO(4) composites do not require additional operational steps to introduce sulfur, these electrode materials might demonstrate high potential for commercialization. MDPI 2020-11-29 /pmc/articles/PMC7759786/ /pubmed/33260445 http://dx.doi.org/10.3390/nano10122381 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Savina, Aleksandra A.
Orlova, Elena D.
Morozov, Anatolii V.
Luchkin, Sergey Yu.
Abakumov, Artem M.
Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries
title Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries
title_full Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries
title_fullStr Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries
title_full_unstemmed Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries
title_short Sulfate-Containing Composite Based on Ni-Rich Layered Oxide LiNi(0.8)Mn(0.1)Co(0.1)O(2) as High-Performance Cathode Material for Li-ion Batteries
title_sort sulfate-containing composite based on ni-rich layered oxide lini(0.8)mn(0.1)co(0.1)o(2) as high-performance cathode material for li-ion batteries
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7759786/
https://www.ncbi.nlm.nih.gov/pubmed/33260445
http://dx.doi.org/10.3390/nano10122381
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