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Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability

A highly crystalline three dimensional (3D) bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite constructed by nanoparticles in the range of 50~100 nm via a rapid microwave assisted solvothermal process followed by carbon coating have been synthesized as cathode material for high...

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Autores principales: Zhang, Qian, Huang, Shao-Zhuan, Jin, Jun, Liu, Jing, Li, Yu, Wang, Hong-En, Chen, Li-Hua, Wang, Bin-Jie, Su, Bao-Lian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4867577/
https://www.ncbi.nlm.nih.gov/pubmed/27181195
http://dx.doi.org/10.1038/srep25942
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author Zhang, Qian
Huang, Shao-Zhuan
Jin, Jun
Liu, Jing
Li, Yu
Wang, Hong-En
Chen, Li-Hua
Wang, Bin-Jie
Su, Bao-Lian
author_facet Zhang, Qian
Huang, Shao-Zhuan
Jin, Jun
Liu, Jing
Li, Yu
Wang, Hong-En
Chen, Li-Hua
Wang, Bin-Jie
Su, Bao-Lian
author_sort Zhang, Qian
collection PubMed
description A highly crystalline three dimensional (3D) bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite constructed by nanoparticles in the range of 50~100 nm via a rapid microwave assisted solvothermal process followed by carbon coating have been synthesized as cathode material for high performance lithium-ion batteries. The abundant 3D macropores allow better penetration of electrolyte to promote Li(+) diffusion, the mesopores provide more electrochemical reaction sites and the carbon layers outside LiFePO(4) nanoparticles increase the electrical conductivity, thus ultimately facilitating reverse reaction of Fe(3+) to Fe(2+) and alleviating electrode polarization. In addition, the particle size in nanoscale can provide short diffusion lengths for the Li(+) intercalation-deintercalation. As a result, the 3D macro-mesoporous nanosized LiFePO(4)/C electrode exhibits excellent rate capability (129.1 mA h/g at 2 C; 110.9 mA h/g at 10 C) and cycling stability (87.2% capacity retention at 2 C after 1000 cycles, 76.3% at 5 C after 500 cycles and 87.8% at 10 C after 500 cycles, respectively), which are much better than many reported LiFePO(4)/C structures. Our demonstration here offers the opportunity to develop nanoscaled hierarchically porous LiFePO(4)/C structures for high performance lithium-ion batteries through microwave assisted solvothermal method.
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spelling pubmed-48675772016-05-31 Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability Zhang, Qian Huang, Shao-Zhuan Jin, Jun Liu, Jing Li, Yu Wang, Hong-En Chen, Li-Hua Wang, Bin-Jie Su, Bao-Lian Sci Rep Article A highly crystalline three dimensional (3D) bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite constructed by nanoparticles in the range of 50~100 nm via a rapid microwave assisted solvothermal process followed by carbon coating have been synthesized as cathode material for high performance lithium-ion batteries. The abundant 3D macropores allow better penetration of electrolyte to promote Li(+) diffusion, the mesopores provide more electrochemical reaction sites and the carbon layers outside LiFePO(4) nanoparticles increase the electrical conductivity, thus ultimately facilitating reverse reaction of Fe(3+) to Fe(2+) and alleviating electrode polarization. In addition, the particle size in nanoscale can provide short diffusion lengths for the Li(+) intercalation-deintercalation. As a result, the 3D macro-mesoporous nanosized LiFePO(4)/C electrode exhibits excellent rate capability (129.1 mA h/g at 2 C; 110.9 mA h/g at 10 C) and cycling stability (87.2% capacity retention at 2 C after 1000 cycles, 76.3% at 5 C after 500 cycles and 87.8% at 10 C after 500 cycles, respectively), which are much better than many reported LiFePO(4)/C structures. Our demonstration here offers the opportunity to develop nanoscaled hierarchically porous LiFePO(4)/C structures for high performance lithium-ion batteries through microwave assisted solvothermal method. Nature Publishing Group 2016-05-16 /pmc/articles/PMC4867577/ /pubmed/27181195 http://dx.doi.org/10.1038/srep25942 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Zhang, Qian
Huang, Shao-Zhuan
Jin, Jun
Liu, Jing
Li, Yu
Wang, Hong-En
Chen, Li-Hua
Wang, Bin-Jie
Su, Bao-Lian
Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability
title Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability
title_full Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability
title_fullStr Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability
title_full_unstemmed Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability
title_short Engineering 3D bicontinuous hierarchically macro-mesoporous LiFePO(4)/C nanocomposite for lithium storage with high rate capability and long cycle stability
title_sort engineering 3d bicontinuous hierarchically macro-mesoporous lifepo(4)/c nanocomposite for lithium storage with high rate capability and long cycle stability
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4867577/
https://www.ncbi.nlm.nih.gov/pubmed/27181195
http://dx.doi.org/10.1038/srep25942
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