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Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes

Iron oxides are regarded as promising anodes for both lithium-ion batteries (LIBs) and potassium-ion batteries (KIBs) due to their high theoretical capacity, abundant reserves, and low cost, but they are also facing great challenges due to the sluggish reaction kinetics, low electronic conductivity,...

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Autores principales: Peng, Qianqian, Guo, Chuan, Qi, Shuo, Sun, Weiwei, Lv, Li-Ping, Du, Fei-Hu, Wang, Baofeng, Chen, Shuangqiang, Wang, Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8693532/
https://www.ncbi.nlm.nih.gov/pubmed/35424113
http://dx.doi.org/10.1039/d0ra08503k
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author Peng, Qianqian
Guo, Chuan
Qi, Shuo
Sun, Weiwei
Lv, Li-Ping
Du, Fei-Hu
Wang, Baofeng
Chen, Shuangqiang
Wang, Yong
author_facet Peng, Qianqian
Guo, Chuan
Qi, Shuo
Sun, Weiwei
Lv, Li-Ping
Du, Fei-Hu
Wang, Baofeng
Chen, Shuangqiang
Wang, Yong
author_sort Peng, Qianqian
collection PubMed
description Iron oxides are regarded as promising anodes for both lithium-ion batteries (LIBs) and potassium-ion batteries (KIBs) due to their high theoretical capacity, abundant reserves, and low cost, but they are also facing great challenges due to the sluggish reaction kinetics, low electronic conductivity, huge volume change, and unstable electrode interphases. Moreover, iron oxides are normally prepared at high temperature, forming large particles because of Ostwald ripening, and exhibiting low electronic/ionic conductivity and unfavorable mechanical stability. To address those issues, herein, we have synthesized ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets (Fe(3)O(4)@LCS), using the coordination interaction between catechol and Fe(3+), demonstrating fast reaction kinetics, high capacity, and typical capacitive-controlled electrochemical behaviors. Such Fe(3)O(4)@LCS nanocomposites were derived from coordination compounds with layered structures via van der Waals's force. Fe(3)O(4)@LCS-500 (annealed at 500 °C) nanocomposites have displayed attractive features of ultra-small particle size (∼5 nm), high surface area, mesoporous and layered feature. When used as anodes, Fe(3)O(4)@LCS-500 nanocomposites delivered exceptional electrochemical performances of high reversible capacity, excellent cycle stability and rate performance for both LIBs and KIBs. Such exceptional performances are highly associated with features of Fe(3)O(4)@LCS-500 nanocomposites in shortening Li/K ion diffusion length, fast reaction kinetics, high electronic/ionic conductivity, and robust electrode interphase stability.
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spelling pubmed-86935322022-04-13 Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes Peng, Qianqian Guo, Chuan Qi, Shuo Sun, Weiwei Lv, Li-Ping Du, Fei-Hu Wang, Baofeng Chen, Shuangqiang Wang, Yong RSC Adv Chemistry Iron oxides are regarded as promising anodes for both lithium-ion batteries (LIBs) and potassium-ion batteries (KIBs) due to their high theoretical capacity, abundant reserves, and low cost, but they are also facing great challenges due to the sluggish reaction kinetics, low electronic conductivity, huge volume change, and unstable electrode interphases. Moreover, iron oxides are normally prepared at high temperature, forming large particles because of Ostwald ripening, and exhibiting low electronic/ionic conductivity and unfavorable mechanical stability. To address those issues, herein, we have synthesized ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets (Fe(3)O(4)@LCS), using the coordination interaction between catechol and Fe(3+), demonstrating fast reaction kinetics, high capacity, and typical capacitive-controlled electrochemical behaviors. Such Fe(3)O(4)@LCS nanocomposites were derived from coordination compounds with layered structures via van der Waals's force. Fe(3)O(4)@LCS-500 (annealed at 500 °C) nanocomposites have displayed attractive features of ultra-small particle size (∼5 nm), high surface area, mesoporous and layered feature. When used as anodes, Fe(3)O(4)@LCS-500 nanocomposites delivered exceptional electrochemical performances of high reversible capacity, excellent cycle stability and rate performance for both LIBs and KIBs. Such exceptional performances are highly associated with features of Fe(3)O(4)@LCS-500 nanocomposites in shortening Li/K ion diffusion length, fast reaction kinetics, high electronic/ionic conductivity, and robust electrode interphase stability. The Royal Society of Chemistry 2021-01-04 /pmc/articles/PMC8693532/ /pubmed/35424113 http://dx.doi.org/10.1039/d0ra08503k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Peng, Qianqian
Guo, Chuan
Qi, Shuo
Sun, Weiwei
Lv, Li-Ping
Du, Fei-Hu
Wang, Baofeng
Chen, Shuangqiang
Wang, Yong
Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
title Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
title_full Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
title_fullStr Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
title_full_unstemmed Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
title_short Ultra-small Fe(3)O(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
title_sort ultra-small fe(3)o(4) nanodots encapsulated in layered carbon nanosheets with fast kinetics for lithium/potassium-ion battery anodes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8693532/
https://www.ncbi.nlm.nih.gov/pubmed/35424113
http://dx.doi.org/10.1039/d0ra08503k
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