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Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics

In this paper, the synthesis of ultrasmall Na(2)FePO(4)F nanoparticles (≈3.8 nm) delicately embedded in porous N‐doped carbon nanofibers (denoted as Na(2)FePO(4)F@C) by electrospinning is reported. The as‐prepared Na(2)FePO(4)F@C fiber film tightly adherent on aluminum foil features great flexibilit...

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Autores principales: Wang, Fanfan, Zhang, Ning, Zhao, Xudong, Wang, Lixuan, Zhang, Jian, Wang, Tianshi, Liu, Fanfan, Liu, Yongchang, Fan, Li‐Zhen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662290/
https://www.ncbi.nlm.nih.gov/pubmed/31380194
http://dx.doi.org/10.1002/advs.201900649
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author Wang, Fanfan
Zhang, Ning
Zhao, Xudong
Wang, Lixuan
Zhang, Jian
Wang, Tianshi
Liu, Fanfan
Liu, Yongchang
Fan, Li‐Zhen
author_facet Wang, Fanfan
Zhang, Ning
Zhao, Xudong
Wang, Lixuan
Zhang, Jian
Wang, Tianshi
Liu, Fanfan
Liu, Yongchang
Fan, Li‐Zhen
author_sort Wang, Fanfan
collection PubMed
description In this paper, the synthesis of ultrasmall Na(2)FePO(4)F nanoparticles (≈3.8 nm) delicately embedded in porous N‐doped carbon nanofibers (denoted as Na(2)FePO(4)F@C) by electrospinning is reported. The as‐prepared Na(2)FePO(4)F@C fiber film tightly adherent on aluminum foil features great flexibility and is directly used as binder‐free cathode for sodium‐ion batteries, exhibiting admirable electrochemical performance with high reversible capacity (117.8 mAh g(−1) at 0.1 C), outstanding rate capability (46.4 mAh g(−1) at 20 C), and unprecedentedly high cyclic stability (85% capacity retention after 2000 cycles). The reaction kinetics and mechanism are explored by a combination study of cyclic voltammetry, ex situ structure/valence analyses, and first‐principles computations, revealing the highly reversible phase transformation of Na(2)Fe(II)PO(4)F ↔ NaFe(III)PO(4)F, the facilitated Na(+) diffusion dynamics with low energy barriers, and the desirable pseudocapacitive behavior for fast charge storage. Pouch‐type Na‐ion full batteries are also assembled employing the Na(2)FePO(4)F@C nanofibers cathode and the carbon nanofibers anode, demonstrating a promising energy density of 135.8 Wh kg(−1) and a high capacity retention of 84.5% over 200 cycles. The distinctive network architecture of ultrafine active materials encapsulated into interlinked carbon nanofibers offers an ideal platform for enhancing the electrochemical reactivity, electronic/ionic transmittability, and structural stability of Na‐storage electrodes.
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spelling pubmed-66622902019-08-02 Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics Wang, Fanfan Zhang, Ning Zhao, Xudong Wang, Lixuan Zhang, Jian Wang, Tianshi Liu, Fanfan Liu, Yongchang Fan, Li‐Zhen Adv Sci (Weinh) Full Papers In this paper, the synthesis of ultrasmall Na(2)FePO(4)F nanoparticles (≈3.8 nm) delicately embedded in porous N‐doped carbon nanofibers (denoted as Na(2)FePO(4)F@C) by electrospinning is reported. The as‐prepared Na(2)FePO(4)F@C fiber film tightly adherent on aluminum foil features great flexibility and is directly used as binder‐free cathode for sodium‐ion batteries, exhibiting admirable electrochemical performance with high reversible capacity (117.8 mAh g(−1) at 0.1 C), outstanding rate capability (46.4 mAh g(−1) at 20 C), and unprecedentedly high cyclic stability (85% capacity retention after 2000 cycles). The reaction kinetics and mechanism are explored by a combination study of cyclic voltammetry, ex situ structure/valence analyses, and first‐principles computations, revealing the highly reversible phase transformation of Na(2)Fe(II)PO(4)F ↔ NaFe(III)PO(4)F, the facilitated Na(+) diffusion dynamics with low energy barriers, and the desirable pseudocapacitive behavior for fast charge storage. Pouch‐type Na‐ion full batteries are also assembled employing the Na(2)FePO(4)F@C nanofibers cathode and the carbon nanofibers anode, demonstrating a promising energy density of 135.8 Wh kg(−1) and a high capacity retention of 84.5% over 200 cycles. The distinctive network architecture of ultrafine active materials encapsulated into interlinked carbon nanofibers offers an ideal platform for enhancing the electrochemical reactivity, electronic/ionic transmittability, and structural stability of Na‐storage electrodes. John Wiley and Sons Inc. 2019-05-07 /pmc/articles/PMC6662290/ /pubmed/31380194 http://dx.doi.org/10.1002/advs.201900649 Text en © 2019 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Wang, Fanfan
Zhang, Ning
Zhao, Xudong
Wang, Lixuan
Zhang, Jian
Wang, Tianshi
Liu, Fanfan
Liu, Yongchang
Fan, Li‐Zhen
Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics
title Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics
title_full Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics
title_fullStr Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics
title_full_unstemmed Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics
title_short Realizing a High‐Performance Na‐Storage Cathode by Tailoring Ultrasmall Na(2)FePO(4)F Nanoparticles with Facilitated Reaction Kinetics
title_sort realizing a high‐performance na‐storage cathode by tailoring ultrasmall na(2)fepo(4)f nanoparticles with facilitated reaction kinetics
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6662290/
https://www.ncbi.nlm.nih.gov/pubmed/31380194
http://dx.doi.org/10.1002/advs.201900649
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